EP2246595A1 - Transmission device and vehicle equipped with the same - Google Patents
Transmission device and vehicle equipped with the same Download PDFInfo
- Publication number
- EP2246595A1 EP2246595A1 EP09813152A EP09813152A EP2246595A1 EP 2246595 A1 EP2246595 A1 EP 2246595A1 EP 09813152 A EP09813152 A EP 09813152A EP 09813152 A EP09813152 A EP 09813152A EP 2246595 A1 EP2246595 A1 EP 2246595A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- pressure
- output
- fluid pressure
- engagement element
- shift
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Granted
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- 230000007935 neutral effect Effects 0.000 claims abstract description 33
- 239000012530 fluid Substances 0.000 claims description 124
- 230000001105 regulatory effect Effects 0.000 claims description 49
- 230000000903 blocking effect Effects 0.000 claims description 13
- 108091006208 SLC3 Proteins 0.000 abstract description 117
- 238000005265 energy consumption Methods 0.000 abstract description 9
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- 102000037055 SLC1 Human genes 0.000 description 28
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- 238000010586 diagram Methods 0.000 description 17
- 238000006243 chemical reaction Methods 0.000 description 10
- 230000007423 decrease Effects 0.000 description 6
- 239000000446 fuel Substances 0.000 description 5
- 238000007599 discharging Methods 0.000 description 4
- 230000000694 effects Effects 0.000 description 4
- 238000002485 combustion reaction Methods 0.000 description 3
- 230000001629 suppression Effects 0.000 description 2
- 239000004215 Carbon black (E152) Substances 0.000 description 1
- 101150075681 SCL1 gene Proteins 0.000 description 1
- 230000001276 controlling effect Effects 0.000 description 1
- 230000008878 coupling Effects 0.000 description 1
- 238000010168 coupling process Methods 0.000 description 1
- 238000005859 coupling reaction Methods 0.000 description 1
- 239000002283 diesel fuel Substances 0.000 description 1
- 239000002360 explosive Substances 0.000 description 1
- 229930195733 hydrocarbon Natural products 0.000 description 1
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- 238000002347 injection Methods 0.000 description 1
- 239000007924 injection Substances 0.000 description 1
- 230000035939 shock Effects 0.000 description 1
Images
Classifications
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16H—GEARING
- F16H61/00—Control functions within control units of change-speed- or reversing-gearings for conveying rotary motion ; Control of exclusively fluid gearing, friction gearing, gearings with endless flexible members or other particular types of gearing
- F16H61/04—Smoothing ratio shift
- F16H61/06—Smoothing ratio shift by controlling rate of change of fluid pressure
- F16H61/061—Smoothing ratio shift by controlling rate of change of fluid pressure using electric control means
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16H—GEARING
- F16H61/00—Control functions within control units of change-speed- or reversing-gearings for conveying rotary motion ; Control of exclusively fluid gearing, friction gearing, gearings with endless flexible members or other particular types of gearing
- F16H61/04—Smoothing ratio shift
- F16H2061/0481—Smoothing ratio shift during range shift from drive (D) or reverse (R) to neutral (N)
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16H—GEARING
- F16H61/00—Control functions within control units of change-speed- or reversing-gearings for conveying rotary motion ; Control of exclusively fluid gearing, friction gearing, gearings with endless flexible members or other particular types of gearing
- F16H61/04—Smoothing ratio shift
- F16H2061/0485—Smoothing ratio shift during range shift from neutral (N) to reverse (R)
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16H—GEARING
- F16H61/00—Control functions within control units of change-speed- or reversing-gearings for conveying rotary motion ; Control of exclusively fluid gearing, friction gearing, gearings with endless flexible members or other particular types of gearing
- F16H61/04—Smoothing ratio shift
- F16H2061/0488—Smoothing ratio shift during range shift from neutral (N) to drive (D)
Definitions
- the present invention relates to a transmission apparatus and a vehicle, and particularly relates to a transmission apparatus including an automatic transmission that is mounted in a vehicle and is capable of engaging a first engagement element and a second engagement element among a plurality of engagement elements when shift-operated to a reverse position and engaging the first engagement element when shift-operated to a neutral position, and to a vehicle having the same.
- the apparatus is capable of suppressing delay in operation of clutches and brakes, that is, delay in response to a shift operation, without increasing the capacity of an oil pressure generation source.
- a dedicated linear solenoid is used to turn on or off a brake (or a clutch) which is engaged in the N range.
- the linear solenoid adjusts the pressure by draining a part of input operating oil while outputting the rest of the operating oil. This increases the flow rate consumed by the linear solenoid itself, and increases the flow rate required and consumed in the entire hydraulic circuit, which consequently leads to increase in capacity of the oil pressure generation source and increases energy consumption in the entire apparatus. Further, newly adding the linear solenoid enlarges the entire apparatus.
- a transmission apparatus of the present invention including an automatic transmission that is mounted in a vehicle and is capable of engaging a first engagement element and a second engagement element among a plurality of engagement elements when shift-operated to a reverse position, and engaging the first engagement element when shift-operated to a neutral position, includes: pressure feeding means for adjusting a fluid pressure of a fluid pressure source and outputting the fluid pressure as a line pressure; fluid pressure input/output means for receiving the line pressure from a reverse position output port among a plurality of output ports and outputting the line pressure when shift-operated to the reverse position, and blocking the plurality of output ports when shift-operated to the neutral position; first pressure regulating means for receiving, adjusting, and outputting the line pressure; and selective output means for outputting to the first engagement element the fluid pressure output from the reverse position output port and outputting to the second engagement element the fluid pressure output from the first pressure regulating means when shift-operated to the reverse position, and outputting to the first engagement element the fluid pressure output from the first pressure regulating means when shift-operated
- the fluid pressure input/output means outputs the pressure from the reverse position output port among the plurality of output ports when shift-operated to the reverse position, and blocks the plurality of output ports when shift-operated to the neutral position.
- the first pressure regulating means receives, adjusts, and outputs the line pressure.
- the selective output means outputs to the first engagement element the fluid pressure output from the reverse position output port and outputs to the second engagement element the fluid pressure output from the first pressure regulating means when shift-operated to the reverse position, and outputs to the first engagement element the fluid pressure output from the first pressure regulating means when shift-operated to the neutral position.
- the fluid pressure is only supplied to the first engagement element, whereby it is possible to suppress a discharging capacity of a fluid pressure source such as a pump.
- the pressure regulating means such as a valve, generally, a small amount of operating fluid leaks constantly.
- the discharge capacity of the pressure feeding means has to be increased by the amount of the operating fluid leaking from the pressure regulating means.
- the selective output means may be means for selectively outputting the fluid pressure output from the first pressure regulating means to the fourth engagement element or the first engagement element in the forward position when shift-operated to the forward position. Accordingly, the discharging capacity of the fluid pressure source can be suppressed also when switching from the neutral position to the forward position, and the fuel efficiency can be improved.
- the fourth engagement element may be the second engagement element.
- the fourth engagement element may be an element capable of, when shift-operated to the forward position, forming a shift speed which does not involve direct switching to or from the shift speed for starting.
- speed shifting that supplies the fluid pressure to the engagement element, which is engaged using the first pressure regulating means, does not occur.
- the first pressure regulating means may be means for performing pressure adjustment such that when shift-operated to the neutral position, the first engagement element is engaged by a low engagement pressure lower than an engagement pressure when the first engagement element is fully engaged. Accordingly, the fluid pressure can be discharged quickly from the first engagement element when shifting speed, and a time needed for shifting can be shortened. Particularly, this effect becomes more prominent when shifting from the shift speed for starting to another forward speed.
- the selective output means may be means including: a switching valve that has a first input port receiving the fluid pressure output from the first pressure regulating means, a second input port receiving the fluid pressure output from the reverse position output port of the fluid input/output means, a first output port outputting the fluid pressure to the first engagement element, and a second output port outputting the fluid pressure to the second engagement element, and that selectively switches between a state that the fluid pressure input to the first input port is output from the first output port and a state that the fluid pressure input to the first input port is output from the second output port and the fluid pressure input to the second input port is output from the first output port; and signal pressure output means for outputting a signal pressure for driving the switching valve.
- the state can be switched by one switching valve, and thus the fluid pressure circuit can be made compact.
- the destination of output of the output pressure of the first pressure regulating means can be switched from the second engagement element to the first engagement element by switching one switching valve. Therefore, a time needed for shifting when shift-operated from the reverse position to the forward position can be shortened.
- the fluid pressure input/output means may be means for receiving the line pressure from a forward position output port among the plurality of output ports and outputting the line pressure when shift-operated to the forward position
- the transmission apparatus may include second pressure regulating means for receiving the fluid pressure output from the forward position output port and adjusting and outputting the fluid pressure
- the selective output means may be means for selectively outputting the fluid pressure output from the second pressure regulating means to the fourth engagement element or to the first engagement element in the forward position when shift-operated to the forward position.
- the discharging capacity of the fluid pressure source can be suppressed also when switching from the neutral position to the forward position, and the fuel efficiency can be improved. Furthermore, disengagement of the fourth engagement element and engagement of the third engagement element can be performed smoothly when changing from a shift speed other than the shift speed for starting to the shift speed for starting.
- the fourth engagement element may be an element capable of, when shift-operated to the forward position, forming a shift speed which does not involve direct switching to or from the shift speed for starting.
- the fourth engagement element is an engagement element forming a shift speed (low shift speed) that is switched directly to/from the shift speed for starting
- shifting when shifting from a high shift speed to the shift speed for starting, considering shift shock and over-rev of the rotation speed of the internal combustion engine connected to the input shaft of the automatic transmission, shifting is generally made from the high shift speed to the shift speed for starting through an intermediate shift speed.
- the selective output means may output the fluid pressure output from the first pressure regulating means to the second engagement element when shift-operated to the forward position
- the second engagement element may be an element capable of, when shift-operated to the forward position, forming a shift speed which is other than the shift speed for starting and involves direct switching to or from the shift speed for starting.
- the first pressure regulating means may be means for performing pressure adjustment such that when shift-operated to the neutral position, the first engagement element is engaged by a low engagement pressure lower than an engagement pressure when the first engagement element is fully engaged. Accordingly, the fluid pressure can be discharged from the first engagement element quickly when shifting speed, and the time needed for speed shifting can be reduced. Particularly, this effect becomes more prominent when shifting from the shift speed for starting to another forward speed.
- the selective output means may be means including: a first switching valve receiving the fluid pressure output from the first pressure regulating means and selectively outputting the fluid pressure to a first output port or a second output port supplying the fluid pressure to the second engagement element; a second switching valve that has a first input port receiving the fluid pressure output from the first output port of the first switching valve and a second input port receiving the fluid pressure output from the reverse position output port of the fluid input/output means, and that selectively outputs the fluid pressure input to the first and second input ports to the first engagement element; and signal pressure output means for outputting a signal pressure for driving the first and second switching valves.
- the selective output means may be means including: a first switching valve receiving the fluid pressure output from the first pressure regulating means and selectively outputting the fluid pressure to a first output port or to a second output port supplying the fluid pressure to the second engagement element; a second switching valve that has a first input port and a second input port receiving the fluid pressure output from the reverse position output port of the fluid input/output means, and that selectively inputs the fluid pressure through the first or second input port and outputs the fluid pressure to the first engagement element; a third switching valve that has a third input port receiving the fluid pressure output from the first output port of the first switching valve, a fourth input port receiving the fluid pressure output from the second pressure regulating means, a third output port outputting the fluid pressure to the first input port of the second switching valve, and a fourth output port outputting the
- a vehicle of the present invention has the transmission apparatus of the present invention according to one of the above-described aspects, that is, basically, a transmission apparatus having an automatic transmission that is mounted in a vehicle and is capable of engaging a first engagement element and a second engagement element among a plurality of engagement elements when shift-operated to a reverse position, and engaging the first engagement element when shift-operated to a neutral position.
- the transmission apparatus includes: pressure feeding means for adjusting a fluid pressure of a fluid pressure source and outputting the fluid pressure as a line pressure; fluid pressure input/output means for receiving the line pressure from a reverse position output port among a plurality of output ports and outputting the line pressure when shift-operated to the reverse position, and blocking the plurality of output ports when shift-operated to the neutral position; first pressure regulating means for receiving, adjusting, and outputting the line pressure; and selective output means for outputting to the first engagement element the fluid pressure output from the reverse position output port and outputting to the second engagement element the fluid pressure output from the first pressure regulating means when shift-operated to the reverse position, and outputting to the first engagement element the fluid pressure output from the first pressure regulating means when shift-operated to the neutral position.
- a transmission apparatus including an automatic transmission that is mounted in a vehicle and is capable of engaging a first engagement element and a second engagement element among a plurality of engagement elements when shift-operated to a reverse position, and engaging the first engagement element when shift-operated to a neutral position, includes: pressure feeding means for adjusting a fluid pressure of a fluid pressure source and outputting the fluid pressure as a line pressure; fluid pressure input/output means for receiving the line pressure from a reverse position output port among a plurality of output ports and outputting the line pressure when shift-operated to the reverse position, and blocking the plurality of output ports when shift-operated to the neutral position; first pressure regulating means for receiving, adjusting, and outputting the line pressure; and selective output means for outputting to the first engagement element the fluid pressure output from the reverse position output port and outputting to the second engagement element the fluid pressure output from the first pressure regulating means when shift-operated to the reverse position, and outputting to the first engagement element the fluid pressure output from the first pressure regulating means when shift-operated to the reverse
- the transmission apparatus of the present invention of one of the above-described aspects since the transmission apparatus of the present invention of one of the above-described aspects is mounted, the effects achieved by the transmission apparatus of the present invention, such as effects of suppressing energy consumption of the entire apparatus and downsizing the apparatus, can be achieved.
- FIG. 1 is a structural diagram showing an overview of the structure of an automobile 10 having a transmission apparatus according to one embodiment of the present invention.
- FIG. 2 shows an operation table of an automatic transmission 20.
- FIG. 3 is a structural diagram showing an overview of the structure of a hydraulic circuit 50 of the automatic transmission 20. As shown in FIG.
- the automobile 10 of the embodiment has an engine 12 as an internal combustion engine outputting motive power by explosive combustion of hydrocarbon fuel such as gasoline and diesel oil, a torque converter 24 with a lock-up clutch attached to a crankshaft 14 of the engine 12, the multi-speed automatic transmission 20 that includes an input shaft 21 connected to an output side of the torque converter 24 and an output shaft 22 connected to driving wheels 18a, 18b via a gear mechanism 26 and a differential gear 28, and that shifts the motive power input to the input shaft 21 and transmits the shifted motive power to the output shaft 22, and a main electronic control unit (hereinafter also referred to as a main ECU) 90 controlling the entire vehicle.
- a main ECU main electronice control unit
- the engine 12 is operation-controlled by an engine electronic control unit (hereinafter also referred to as an engine ECU) 16.
- the engine ECU 16 is structured as a microprocessor with a CPU as a main component, and has a ROM storing control programs, a RAM temporarily storing data, an input-output port, and a communication port besides the CPU.
- signals from various sensors needed for operation-controlling the engine 12, such as a rotation speed sensor attached to the crankshaft 14 are input via an input port, and from the engine ECU 16, a drive signal to a throttle motor adjusting a throttle opening, a control signal to a fuel injection valve, an ignition signal to spark plugs, and so on are output via an output port.
- the engine ECU 16 communicates with the main ECU 90, controls the engine 12 by a control signal from the main ECU 90, and outputs data related to the operation state of the engine 12 to the main ECU 90 as necessary.
- the automatic transmission 20 is structured as a multi-speed transmission with six speeds, and has a single pinion type planetary gear mechanism 30, a Ravigneaux type planetary gear mechanism 40, three clutches C1, C2, C3, two brakes B1, B2, and a one-way clutch F1.
- the single pinion type planetary gear mechanism 30 has a sun gear 31 as an external gear, a ring gear 32 as an internal gear arranged concentrically with the sun gear 31, a plurality of pinion gears 33 meshing with the sun gear 31 and with the ring gear 32, and a carrier 34 rotatably and revolvably holding the plurality of pinion gears 33.
- the sun gear 31 is fixed to the case, and the ring gear 32 is connected to the input shaft 21.
- the Ravigneaux type planetary gear mechanism 40 has two sun gears 41a, 41b as external gears, a ring gear 42 as an internal gear, a plurality of short pinion gears 43a meshing with the sun gear 41a, a plurality of long pinion gears 43b meshing with the sun gear 41b and the plurality of short pinion gears 43a and with the ring gear 42, and a carrier 44 coupling the plurality of short pinion gears 43a and the plurality of long pinion gears 43b and holding the short pinion gears 43a and the long pinion gears 43b rotatably and revolvably.
- the sun gear 41a is connected to the carrier 34 of the single pinion type planetary gear mechanism 30 via the clutch C1.
- the sun gear 41b is connected to the carrier 34 via the clutch C3 and to a case via the brake B1.
- the ring gear 42 is connected to the output shaft 22.
- the carrier 44 is connected to the input shaft 21 via the clutch C2. Further, the carrier 44 is connected to the case via the brake B2, and to the case via the one-way clutch F1.
- the automatic transmission 20 it is possible to switch among first to sixth forward speeds, a reverse speed, and a neutral, by combinations of turning on and off of the clutches C1 to C3 (hereinafter, turning on refers to engagement and turning off refers to disengagement) and turning on and off of the brakes B1, B2, as shown in the operation table of FIG. 2 .
- a state of the first forward speed can be formed by turning on the clutch C1 and turning off the clutches C2, C3 and the brakes B1, B2, or by turning on the clutch C1 and the brake B2 and turning off the clutches C2, C3 and the brake B1.
- motive power input to the ring gear 32 of the single pinion type planetary gear mechanism 30 from the input shaft 21 is decelerated by receiving a reaction force on the sun gear 31 side by fixing the sun gear 31, and is transmitted to the sun gear 41a of the Ravigneaux type planetary gear mechanism 40 via the carrier 34 and the clutch C1.
- Motive power input to the sun gear 41a is decelerated by receiving a reaction force on the carrier 44 side by fixing the carrier 44 by the one-way clutch F1, and is output to the output shaft 22 via the ring gear 42.
- motive power input to the input shaft 21 is decelerated with a relatively large speed reduction ratio and output to the output shaft 22.
- the carrier 44 is fixed instead of the one-way clutch F1 by turning on the brake B2.
- a state of the second forward speed can be formed by turning on the clutch C1 and the brake B1 and turning off the clutches C2, C3 and the brake B2.
- motive power input to the ring gear 32 of the single pinion type planetary gear mechanism 30 from the input shaft 21 is decelerated by receiving a reaction force on the sun gear 31 side by fixing the sun gear 31, and is transmitted to the sun gear 41a of the Ravigneaux type planetary gear mechanism 40 via the carrier 34 and the clutch C1.
- Motive power input to the sun gear 41a is decelerated by receiving a reaction force on the sun gear 41b side by fixing the sun gear 41b by the brake B1, and is output to the output shaft 22 via the ring gear 42.
- motive power input to the input shaft 21 is decelerated with a smaller speed reduction ratio than that of the first forward speed and output to the output shaft 22.
- a state of the third forward speed can be formed by turning on the clutches C1, C3 and turning off the clutch C2 and the brakes B1, B2.
- motive power input to the ring gear 32 of the single pinion type planetary gear mechanism 30 from the input shaft 21 is decelerated by receiving a reaction force on the sun gear 31 side by fixing the sun gear 31, and is transmitted to the sun gear 41a of the Ravigneaux type planetary gear mechanism 40 via the carrier 34 and the clutch C1.
- Motive power input to the sun gear 41a is output at equal speed to the output shaft 22 via the ring gear 42 by integral rotation of the Ravigneaux type planetary gear mechanism 40 by turning on of the clutch C1 and the clutch C3.
- motive power input to the input shaft 21 is decelerated with a smaller speed reduction ratio than that of the second forward speed and output to the output shaft 22.
- a state of the fourth forward speed can be formed by turning on the clutches C1, C2 and turning off the clutch C3 and the brakes B1, B2.
- motive power input to the ring gear 32 of the single pinion type planetary gear mechanism 30 from the input shaft 21 is decelerated by receiving a reaction force on the sun gear 31 side by fixing the sun gear 31 is transmitted to the sun gear 41a of the Ravigneaux type planetary gear mechanism 40 via the carrier 34 and the clutch C1.
- the motive power is also transmitted to the carrier 44 of the Ravigneaux type planetary gear mechanism 40 directly from the input shaft 21 via the clutch C2, thereby determining a drive state of the ring gear 42, that is, the output shaft 22.
- motive power input to the input shaft 21 is decelerated with a smaller speed reduction ratio than that of the third forward speed and output to the output shaft 22.
- a state of the fifth forward speed can be formed by turning on the clutches C2, C3 and turning off the clutch C1 and the brakes B1, B2.
- motive power input to the ring gear 32 of the single pinion type planetary gear mechanism 30 from the input shaft 21 is decelerated by receiving a reaction force on the sun gear 31 side by fixing the sun gear 31, and is transmitted to the sun gear 41b of the Ravigneaux type planetary gear mechanism 40 via the carrier 34 and the clutch C1.
- the motive power is also transmitted to the carrier 44 of the Ravigneaux type planetary gear mechanism 40 directly from the input shaft 21 via the clutch C2, thereby determining a drive state of the ring gear 42, that is, the output shaft 22.
- motive power input to the input shaft 21 is accelerated and output to the output shaft 22.
- a state of the sixth forward speed can be formed by turning on the clutch C2 and the brake B1, and turning off the clutches C1, C3 and the brake B2.
- motive power input to the carrier 44 of the Ravigneaux type planetary gear mechanism 40 from the input shaft 21 via the clutch C2 is accelerated by receiving a reaction force on the sun gear 41b side by fixing the sun gear 41b by the brake B1, and is output to the output shaft 22 via the ring gear 42.
- motive power input to the input shaft 21 is accelerated with a smaller speed reduction ratio than that of the fifth forward speed and output to the output shaft 22.
- a state of a first reverse speed can be formed by turning on the clutch C3 and the brake B2 and turning off the clutches C1, C2 and the brake B1.
- motive power input to the ring gear 32 of the single pinion type planetary gear mechanism 30 from the input shaft 21 is decelerated by receiving a reaction force on the sun gear 31 side by fixing the sun gear 31, and is transmitted to the sun gear 41b of the Ravigneaux type planetary gear mechanism 40 via the carrier 34 and the clutch C3.
- Motive power input to the sun gear 41b is rotated in reverse by receiving a reaction force on the carrier 44 side by fixing the carrier 44 by the brake B2 and output to the output shaft 22 via the ring gear 42.
- motive power input to the input shaft 21 is decelerated with a relatively small speed reduction ratio and output to the output shaft 22 as a motive power of reverse rotation.
- a state of neutral may be formed by turning on the brake B2 and turning off the clutches C1 to C3 and the brake B1, or by turning off all of the clutches C1 to C3 and the brakes B1, B2.
- the state of neutral is formed by the former. The reason for doing so will be described later.
- the clutches C1 to C3 and the brakes B1, B2 of the automatic transmission 20 are driven by the hydraulic circuit 50 of FIG. 3 .
- This hydraulic circuit 50 is structured from, as shown in the diagram, a mechanical oil pump 52, a regulator valve 54, a linear solenoid 56, a manual valve 58, a normal close type linear solenoid SLC1, a normal close type linear solenoid SLC2, a normal open type linear solenoid SLC3, a normal close type linear solenoid SLB1, a C3 relay valve 60, a C2 relay valve 70, a B2 relay valve 80, a normal open type on-off solenoid S1, a normal close type on-off solenoid S2, and so on.
- the mechanical oil pump 52 sucks operating oil from a strainer 51 and pressure feeds the oil using motive power from the engine 12, and the regulator valve 54 adjusts the pressure of operating oil (line pressure PL) pressure fed by the mechanical oil pump 52.
- the linear solenoid 56 drives the regulator valve 54 using a modulator pressure PMOD input via a not-shown modulator valve from the line pressure PL.
- the manual valve 58 includes an input port 58a receiving the line pressure PL, a D position output port 58b, and an R position output port 58c.
- the manual valve 58 blocks communication between the input port 58a and both the output ports 58b, 58c when the shift lever 91 is in the neutral (N) position, and allows communication between the input port 58a and the D position output port 58b and blocks communication between the input port 58a and the R position output port 58c when the shift lever 91 is in the drive (D) position.
- the manual valve 58 blocks communication between the input port 58a and the D position output port 58b and allows communication between the input port 58a and the R position output port 58c.
- the linear solenoid SLC1 receives the line pressure PL and adjusts and outputs the line pressure to the clutch C1.
- the linear solenoid SLC2 receives a drive pressure PD from the D position output port 58b of the manual valve 58, and adjusts and outputs the drive pressure.
- the linear solenoid SLC3 receives the line pressure PL, and adjusts and outputs the line pressure PL.
- the linear solenoid SLB1 receives the drive pressure PD from the D position output port 58b of the manual valve 58, and adjusts and outputs the drive pressure PD to the brake B1.
- the C3 relay valve 60 receives an SLC3 pressure that is an output pressure from the linear solenoid SLC3 and selectively outputs the pressure to the clutch C3 or the other oil passage 69.
- the C2 relay valve 70 receives an output pressure from the C3 relay valve 60 via the other oil passage 69 and selectively outputs the output pressure to the clutch C2 or the other oil passage 79. Further, the C2 relay valve 70 receives an SLC2 pressure that is an output pressure from the linear solenoid SLC2, and outputs the SLC2 pressure to the oil passage 79 when outputting the output pressure of the C3 relay valve 60 to the clutch C2, and blocks the SLC2 pressure when outputting the output pressure of the C3 relay valve 60 to the oil passage 79.
- the B2 relay valve 80 selectively receives an output pressure from the C2 relay valve 70 output to the oil passage 79 and a reverse pressure PR output from the R position output port 58c of the manual valve 58, and outputs the selected pressure to the brake B2.
- the on-off solenoid S1 outputs a signal pressure for driving to the C2 relay valve 70 using a modulator pressure PMOD input via a modulator valve from the line pressure PL.
- the on-off solenoid S2 outputs a signal pressure for driving to the C3 relay valve 60 and the B2 relay valve 80 using the modulator pressure PMOD input via the modulator valve from the line pressure PL.
- the oil passage between the R position output port 58c of the manual valve 58 and the input port 82d of the B2 relay valve 80 is provided with a check valve 59a in a direction toward the B2 relay valve 80 side, and is provided with an orifice 59b in parallel with the check valve 59a.
- the line pressure is an oil pressure needed in the automatic transmission. This oil pressure needed in the automatic transmission is calculated from the state (in shifting or not) of the automatic transmission 20, torque output from the engine 12, vehicle speed, throttle opening, temperature of operating oil (oil temperature), and so on.
- the C3 relay valve 60 is structured from a sleeve 62 in which a signal pressure input port 62a receiving the signal pressure from the on-off solenoid S2, an input port 62b receiving the output pressure (SLC3 pressure) from the linear solenoid SLC3, an output port 62c outputting an oil pressure to the clutch C3, an output port 62d outputting an oil pressure to the oil passage 69, and a drain port 62e are formed, a spool 64 sliding in the sleeve 62 in an axial direction, and a spring 66 biasing the spool 64 in the axial direction.
- the C2 relay valve 70 is structured from a sleeve 72 in which a signal pressure input port 72a receiving the signal pressure from the on-off solenoid S1, an input port 72b receiving the output pressure output from the C3 relay valve 60 to the oil passage 69, an input port 72c receiving the output pressure (SLC2 pressure) from the linear solenoid SLC2, an output port 72d outputting an oil pressure to the clutch C2, an output port 72e outputting an oil pressure to the oil passage 79, and a drain port 72f are formed, a spool 74 sliding in the sleeve 72 in an axial direction, and a spring 76 biasing the spool 74 in the axial direction.
- the B2 relay valve 80 is structured from a sleeve 82 in which a signal pressure input port 82a receiving the signal pressure from the on-off solenoid S2, a signal pressure input port 82b and a signal pressure output port 82c for outputting the signal pressure from the on-off solenoid S1 to the signal pressure input port 72a of the C2 relay valve 70 via the B2 relay valve 80, an input port 82d receiving a reverse pressure PR from the R position output port 58c of the manual valve 58, an input port 82e receiving an output pressure from the output port 72e of the C2 relay valve 70, and an output port 82f outputting an oil pressure to the brake B2 are formed, a spool 84 sliding in the sleeve 82 in an axial direction, and a spring 86 biasing the spool 84 in the axial direction.
- this B2 relay valve 80 when the signal pressure is not input to the signal pressure input port 82a from the on-off solenoid S1, the spool 84 moves to a position shown in a left-half region in the diagram by the biasing force of the spring 86, thereby blocking the signal pressure input port 82b to turn off the signal pressure to the signal pressure input port 72a of the C2 relay valve 70, allowing communication between the input port 82d (the side of the R position output port 58 of the manual valve 58) and the output port 82f (the brake B2 side), and blocking the input port 82e (the C2 relay valve 70 side).
- the automatic transmission 20 (the hydraulic circuit 50) is drive-controlled by an automatic transmission electronic control unit (hereinafter referred to as an ATECU) 29.
- the ATECU 29 is formed as, although not shown in detail, a microprocessor with a CPU as a main component, and has a ROM storing processing programs, a RAM temporarily storing data, an input/output port, and a communication port, besides the CPU.
- an input shaft rotation speed Nin from a rotation speed sensor attached to the input shaft 21, an output shaft rotation speed Nout from a rotation speed sensor attached to the output shaft 22, and the like are input via an input port.
- the ATECU 29 communicates with the main ECU 90, controls the automatic transmission 20 (the hydraulic circuit 50) by a control signal from the main ECU 90, and outputs data related to the state of the automatic transmission 20 to the main ECU 90 as necessary.
- the main ECU 90 is formed as, although not shown in detail, a microprocessor with a CPU as a main component, and has a ROM storing processing programs, a RAM temporarily storing data, an input/output port, and a communication port, besides the CPU.
- a shift position SP from a shift position sensor 92 detecting an operation position of the shift lever 91
- an accelerator opening Acc from an accelerator pedal position sensor 94 detecting a depression amount of an accelerator pedal 93
- a brake switch signal BSW from a brake switch 96 detecting depression of a brake pedal 95
- a vehicle speed V from a vehicle speed sensor 98, and so on
- the shift lever 91 in the embodiment can select among a parking (P) position, a reverse (R) position, a neutral (N) position, and a drive (D) position, and the clutches C1 to C3 and the brake B1, B2 are turned on and off according to the selected position.
- the main ECU 90 is connected to the engine ECU 16 and the ATECU 29 via the communication port, and exchanges various control signals and data with the engine ECU 16 and the ATECU 29.
- one of the first forward speed to the sixth forward speed is set using a shift map based on the accelerator opening ACC and the vehicle speed V, and the linear solenoids 56, SLC1 to SLC3, SLB1 and the on-off solenoids S1, S2 are drive-controlled so that necessary clutches and brakes among the clutches C1 to C3 and the brakes B1, B2 are turned on according to the set shift speed.
- the automatic transmission 20 and the ATECU 29 correspond to the transmission apparatus of the embodiment.
- FIG. 4 is a flowchart showing an example of an R-N switch processing routine executed by the ATECU 29. This routine is executed when the shift lever 91 is switched from the R position to the N position or switched from the N position to the R position.
- the CPU of the ATECU 29 first determines whether the shift lever 91 is switched from the R position to the N position or from the N position to the R position (step S100).
- the linear solenoid SLC3 is drive-controlled so that the SLC3 pressure as the output pressure from the linear solenoid SLC3 decreases gradually (step S110). Accordingly, a clutch pressure PC3 acting on the clutch C3 becomes small gradually, and engagement of the clutch C3 is released (see times t11 to t12 in FIG. 5 ).
- step S120 by which the SLC3 pressure approximates to a predetermined pressure P0 after the shift lever 91 is switched from the R position to the N position (step S120), both of the on-off solenoid S1 and the on-off solenoid S2 are turned on (step S130), the linear solenoid SLC3 is drive-controlled so that the SLC3 pressure is held constant at the predetermined pressure P0 (step S140), and this routine is finished.
- the on-off solenoid S1 is structured as a normal open type solenoid
- the on-off solenoid S2 is structured as a normal close type solenoid.
- the linear solenoid SLC3 is drive-controlled so that the SLC3 pressure is held constant at the predetermined pressure P0, resulting in that the predetermined pressure P0 acts on the brake B2 to engage the brake B2.
- the predetermined pressure P0 in the embodiment is set to the oil pressure to a degree that a piston of the brake B2 comes in contact with a friction plate.
- step S150 the on-off solenoid S1 is turned on and the on-off solenoid S2 is turned off (step S150), and the linear solenoid SLC3 is drive-controlled so that the SLC3 pressure of the linear solenoid SLC3 becomes the value 0 (step S160).
- step S160 the on-off solenoid S1 is turned on and the on-off solenoid S2 is turned off, both the on-off solenoids S1, S2 no longer output the signal pressure.
- the SLC3 pressure of the linear solenoid SLC3 is supplied to the clutch C3 side, and the reverse pressure PR from the R position output port 58c of the manual valve 58 is supplied to the brake B2 side.
- the shift lever 91 is operated to the R position, the input port 58a of the manual valve 58 to which the line pressure PL is input and the R position output port 58c communicate with each other, resulting in that the line pressure PL acts on the brake B2 via the input port 58a and the R position output port 58c of the manual valve 58 to engage the brake B2.
- a fast fill for quickly filling operating oil is performed to fill a pack clearance of the clutch C3 (step S170).
- the SLC3 pressure increases gradually after the fast fill is completed (step S180), the linear solenoid SLC3 is drive-controlled so that the SLC3 pressure becomes maximum accompanying engagement of the clutch C3 (step S190), and this routine is finished.
- the clutch C3 is engaged and the R position is formed.
- the brake B2 is engaged by the oil pressure PR from the R position output port 58 of the manual valve 58, and the clutch C3 is engaged by the SLC3 pressure from the linear solenoid SLC3.
- the brake B2 is engaged by supplying the SLC3 pressure from the linear solenoid SLC3 to the brake B2 instead of the clutch C3.
- FIG. 6 is a flowchart showing an example of a D-R switch processing routine executed by the ATECU 29. This routine is executed when the shift lever 91 is switched from the D position to the R position or from the R position to the D position.
- processing is performed in which a state that the clutch C1 and the brake B2 are on is switched to a state that only the brake B2 is on.
- the CPU of the ATECU 29 first determines whether the shift lever 91 is switched from the D position to the R position or from the R position to the D position (step S200).
- the linear solenoid SLC1 is drive-controlled so that the SLC1 pressure as the output pressure from the linear solenoid SLC1 becomes the value 0 so as to release engagement of the clutch C1 (step S210).
- the on-off solenoid S1 is turned on, and the on-off solenoid S2 is turned off (step S220).
- the SLC3 pressure of the linear solenoid SLC3 is supplied to the clutch C3 side, and the oil pressure PR from the R position output port 58c of the manual valve 58 is supplied to the brake B2 side.
- the line pressure PL acts as the reverse pressure PR on the brake B2 via the input port 58a and the R position output port 58c of the manual valve 58 to thereby engage the brake B2.
- the aforementioned fast fill is performed for the clutch C3 (step S230).
- the SLC3 pressure of the linear solenoid SLC3 is increased gradually (S240), the linear solenoid SLC3 is drive-controlled so that the SLC3 pressure becomes maximum accompanying engagement of the clutch C3 (step S250), and this routine is finished.
- step S260 the linear solenoid SLC3 is drive-controlled so that the SLC3 pressure of the linear solenoid SLC3 decreases gradually. Accordingly, the clutch pressure PC3 acting on the clutch C3 decreases gradually, and engagement of the clutch C3 is released (see times 22 to t23 in FIG. 7 ).
- step S270 the fast fill is performed for the clutch C1 (step S270), and the linear solenoid SLC1 is drive-controlled so that the SLC1 pressure as the output pressure of the linear solenoid SLC1 is increased gradually (step S280).
- step S290 upon elapsing of the predetermined time T from when the shift lever 91 is switched from the R position to the D position (step S290), the on-off solenoid S1 is turned off and the on-off solenoid S2 is turned on (step S300). Accordingly, since both the on-off solenoids S1, S2 output the signal pressure, the SLC2 pressure of the linear solenoid SLC2 is supplied to the brake B2 side, and the SLC3 pressure of the linear solenoid SLC3 is blocked. Then the linear solenoid SLC2 is drive-controlled so that the SLC2 pressure of the linear solenoid SLC2 becomes the aforementioned predetermined pressure P0, and is held constant at this predetermined pressure P0 (step S310).
- the linear solenoid SLC1 is drive-controlled so that the SLC1 pressure of the linear solenoid SLC1 becomes maximum accompanying engagement of the clutch C1 (S320), and this routine is finished.
- the clutch C1 is engaged and the brake B2 is engaged, thereby forming the first forward speed of the D position.
- the brake B2 is engaged by the oil pressure PR from the R position output port 58c of the manual valve 58, and the clutch C3 is engaged by the SLC3 pressure from the linear solenoid SLC3.
- the SLC3 pressure of the linear solenoid SLC3 is used to engage the brake B2
- the SLC2 pressure of the linear solenoid SLC2 is used to engage the brake B2.
- the brake B2 is engaged by supplying the brake B2 with the SLC2 pressure from the linear solenoid SLC2, which is different from the linear solenoid SLC3 supplying an oil pressure to the clutch C3 that is used for forming the third forward speed, and the clutch C1 is engaged by supplying the SLC1 pressure from the linear solenoid SLC1 to the clutch C1.
- downshifting from the third forward speed to the first forward speed can be performed smoothly.
- the engagement pressure of the brake B2 is set to the predetermined pressure P0, which is the minimum required pressure, and thus the consumption flow rate (energy consumption) of the hydraulic circuit 50 can be suppressed further.
- FIG. 8 is a structural diagram showing an overview of the structure of a hydraulic circuit 150 included in the transmission apparatus of the second embodiment. Note that for the transmission apparatus of the second embodiment, the same elements as those in the transmission apparatus of the embodiment are denoted by the same reference numerals, and overlapping descriptions thereof are omitted.
- the hydraulic circuit 150 of the second embodiment has a C3 relay valve 160 switching between a state that the SLC3 pressure, which is the output pressure from the linear solenoid SLC3, is output to the clutch C3 and the reverse pressure PR, which is the output pressure from the R position output port 58c of the manual valve 58, is output to the brake B2 and a state that the SLC3 pressure is output to the brake B2 and the reverse pressure PR is blocked, and a normal close type on-off solenoid S driving the C3 relay valve 160.
- An operation table of the automatic transmission 20 when using this hydraulic circuit 150 is shown in FIG. 9 .
- the C3 relay valve 160 is structured from, as shown in FIG. 8 , a sleeve 162 in which a signal pressure input port 162a receiving a signal pressure from the on-off solenoid S, an input port 162b receiving the reverse pressure PR from the R position output port 58c of the manual valve 58, an input port 162c receiving the output pressure (SLC3 pressure) from the linear solenoid SLC3, an output port 162d outputting an oil pressure to the clutch C3, an output port 162e outputting an oil pressure to the brake B2, and a drain port 162f are formed, a spool 164 sliding in the sleeve 162 in an axial direction, and a spring 166 biasing the spool 164 in the axial direction.
- a signal pressure input port 162a receiving a signal pressure from the on-off solenoid S
- an input port 162b receiving the reverse pressure PR from the R position output port 58c of the manual valve 58
- an input port 162c receiving the
- FIG. 10 is a flowchart showing an example of R-N switch processing routine executed by the ATECU 29. This routine is executed when the shift lever 91 is switched from the R position to the N position or from the N position to the R position. In the following, the routine in FIG. 10 will be described with reference to a time chart illustrated in FIG. 11 .
- the CPU of the ATECU 29 first determines whether the shift lever 91 is switched from the R position to the N position or from the N position to the R position (step S400).
- the linear solenoid SLC3 is drive-controlled so that the SLC3 pressure as the output pressure from the linear solenoid SLC3 decreases gradually (step S410). Accordingly, a clutch pressure PC3 acting on the clutch C3 becomes small gradually, and engagement of the clutch C3 is released (see times t31 to t32 in FIG. 11 ).
- a brake pressure PB2 acting on the brake B2 gradually becomes close to the value 0 (see times t31 to t32 in FIG. 11 ).
- the on-off solenoid S is turned on (step S430)
- the linear solenoid SLC3 is drive-controlled so that the SLC3 pressure is held constant at the predetermined pressure P0 (step S440), and this routine is finished.
- the on-off solenoid S is structured as a normal close type solenoid.
- the signal pressure is output from the on-off solenoid S, resulting in that the SLC3 pressure from the linear solenoid SLC3 is supplied to the brake B2 via the C3 relay valve 160.
- the linear solenoid SLC3 is drive-controlled so that the SLC3 pressure is held constant at the predetermined pressure P0, resulting in that the predetermined pressure P0 acts on the brake B2 to engage the brake B2.
- the predetermined pressure P0 in the embodiment is set to the oil pressure to a degree that a piston of the brake B2 comes in contact with a friction plate (that is, an oil pressure equal to or lower than a stroke end pressure Pse).
- a stroke end pressure Pse an oil pressure equal to or lower than a stroke end pressure
- step S450 when the shift lever 91 is switched from the N position to the R position (time t33 in FIG. 11 ), the on-off solenoid S is turned off (step S450), and the linear solenoid SLC3 is drive-controlled so that the SLC3 pressure of the linear solenoid SLC3 becomes the predetermined pressure P0 that is equal to or lower than the stroke end pressure Pse (step S460).
- the on-off solenoid S When the on-off solenoid S is turned off, the on-off solenoid S no longer outputs the signal pressure.
- the SLC3 pressure from the linear solenoid SLC3 is supplied to the clutch C3 by the C3 relay valve 160, and the line pressure is supplied as the reverse pressure PR to the brake B2 via the input port 58a and the R position output port 58c of the manual valve 58. Then a fast fill for quickly filling operating oil is performed to fill a pack clearance of the clutch C3 (step S470).
- the SLC3 pressure increases gradually after the fast fill is completed (S480), the linear solenoid SLC3 is drive-controlled so that the SLC3 pressure becomes maximum accompanying engagement of the clutch C3 (step S490), and this routine is finished.
- the clutch C3 is engaged and the R position is formed.
- FIG. 12 is a flowchart showing an example of a D-R switch processing routine executed by the ATECU 29. This routine is executed when the shift lever 91 is switched from the D position to the R position or from the R position to the D position. In the following, the routine in FIG. 12 will be described with reference to a time chart illustrated in FIG. 13 .
- the CPU of the ATECU 29 first determines whether the shift lever 91 is switched from the D position to the R position or from the R position to the D position (step S500).
- the linear solenoid SLC1 is drive-controlled so that the SLC1 pressure as the output pressure from the linear solenoid SLC1 becomes the value 0 so as to release engagement of the clutch C1 (step S510), and the on-off solenoid S is turned off (step S520).
- the SLC3 pressure of the linear solenoid SLC3 is supplied to the clutch C3 side by the C3 relay valve 160, and the line pressure is supplied as the reverse pressure PR via the input port 58a and the R position output port 58c of the manual valve 58 to the brake B2 side. Then, the linear solenoid SLC3 is drive-controlled so that the SLC3 pressure of the linear solenoid SLC3 becomes the predetermined pressure P0 that is equal to or lower than the stroke end pressure Pse (step S530), and the aforementioned fast fill is performed for the clutch C3 (step S540). The SLC3 pressure of the linear solenoid SLC3 is increased gradually (S550), the linear solenoid SLC3 is drive-controlled so that the SLC3 pressure becomes maximum accompanying engagement of the clutch C3 (step S560), and this routine is finished.
- step S570 the linear solenoid SLC3 is drive-controlled so that the SLC3 pressure of the linear solenoid SLC3 decreases gradually. Accordingly, the clutch pressure PC3 acting on the clutch C3 decreases gradually, and engagement of the clutch C3 is released (see times 42 to t43 in FIG. 13 ).
- step S580 by which the brake pressure PB2 approximates the predetermined pressure P0 after the shift lever 91 is switched from the R position to the D position (step S580), the on-off solenoid S is turned on (step S590), and the linear solenoid SLC3 is drive-controlled so that the SLC3 pressure is held constant at the predetermined pressure P0 (step S600). Accordingly, since the on-off solenoid S outputs the signal pressure, the SLC3 pressure of the linear solenoid SLC3 is supplied to the brake B2 side by the C3 relay valve 160, resulting in that the brake B2 is engaged by the predetermined pressure P0.
- step S610 the linear solenoid SLC1 is drive-controlled to perform the fast fill for the clutch C1
- step S620 the SLC1 pressure that is the output pressure of the linear solenoid SLC1 is increased gradually
- step S630 the linear solenoid SLC1 is drive-controlled so that the SLC1 pressure of the linear solenoid SLC1 becomes maximum accompanying engagement of the clutch C1 (step S630), and this routine is finished.
- the clutch C1 is engaged and the brake B2 is engaged, thereby forming the first forward speed of the D position.
- the SLC3 pressure of the linear solenoid SLC3 is used to engage the brake B2 when the shift lever 91 is in the N position
- the SLC2 pressure of the linear solenoid SLC2 is used to engage the brake B2 when the shift lever 91 is in the D position (at the time of no engine braking with the first forward speed).
- the present invention is not limited thereto.
- the SLC3 pressure of the linear solenoid SLC3 may be used to engage the brake B2, similarly to when in the N position.
- the brake B2 is engaged when the shift lever 91 is in the D position (at the time of no engine braking with the first forward speed).
- the one-way clutch F1 is engaged instead of the brake B2, and thus the brake B2 need not be engaged.
- the linear solenoids SLC1 to SLC3 are formed as linear solenoids for direct control, which directly controls the corresponding clutches and brakes by generating the optimal clutch pressure from the line pressure PL.
- linear solenoids may be used as ones for pilot control so as to drive control valves separately, and the clutch pressures may be generated by these control valves to control the corresponding clutches and brakes.
- the automatic transmission 20 is structured as a multi-speed transmission with six speeds of first to sixth forward speeds.
- the automatic transmission may be structured as a multi-speed transmission with two to five speeds, or a multi-speed transmission with seven or more speeds.
- the brake B2 corresponds to the "first engagement element”
- the clutch C3 corresponds to the "second engagement element”.
- the mechanical oil pump 52, the regulator valve 54, and the linear solenoid 56 correspond to the "pressure feeding means”.
- the manual valve 58 corresponds to the "fluid pressure input/output means”
- the linear solenoid SLC3 corresponds to the "first pressure regulating means”.
- the C3 relay valve 60, the C2 relay valve 70, the B2 relay valve 80, and the on-off solenoids S1, S2 correspond to the "selective output means".
- the clutch C1 corresponds to the "third engagement element”
- the clutch C2 or the clutch C3 corresponds to the "fourth engagement element”
- the linear solenoid SLC2 corresponds to the "second pressure regulating means”.
- the C3 relay valve 60, the C2 relay valve 70, and the B2 relay valve 80 correspond to the "switching valve”
- the on-off solenoids S1, S2 correspond to the "signal pressure output means”.
- the C3 relay valve 160 also corresponds to the "switching valve”.
- the C3 relay valve 60 corresponds to the "first switching valve”
- the B3 relay valve 80 corresponds to the "second switching valve”
- the C2 relay valve 70 corresponds to the "third switching valve”.
- the output port 62d and the output port 162e correspond to the "first output port”
- the output port 62c and the output port 162d correspond to the "second output port”
- the output port 72e corresponds to the "third output port”
- the output port 72d corresponds to the "fourth output port”.
- the input port 82e and the input port 162c correspond to the "first input port”
- the input port 82b and the input port 162b correspond to the "second input port”
- the input port 72b corresponds to the "third input port”
- the input port 72c corresponds to the "fourth input port”.
- the embodiments are examples for specifically describing the best modes for carrying out the invention described in the Disclosure of the Invention section, and thus the correspondence between the major elements of the embodiments and the major elements of the invention described in the Disclosure of the Invention section does not limit the elements of the invention described in the Disclosure of the Invention section. That is to say, the invention described in the Disclosure of the Invention section should be construed based on the description in that section, and the embodiments are merely specific examples of the invention described in the Disclosure of the Invention section.
- the present invention can be used in the automobile industry and the like.
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Abstract
Description
- The present invention relates to a transmission apparatus and a vehicle, and particularly relates to a transmission apparatus including an automatic transmission that is mounted in a vehicle and is capable of engaging a first engagement element and a second engagement element among a plurality of engagement elements when shift-operated to a reverse position and engaging the first engagement element when shift-operated to a neutral position, and to a vehicle having the same.
- Conventionally, as this kind of transmission apparatus, one is proposed which selectively turns on or off three clutches C-0 to C-2 and five brakes B-0 to B-4 based on an operation of a select lever for switching among ranges, so as to switch among a parking (P) range, a reverse (R) range, a neutral (N) range, and a drive (D) range (see Patent Document 1). In this apparatus, when the select lever is in the R range, three elements, which are the clutch C-2, the brake B-0, and the brake B-4, need to be engaged. Accordingly, even when the select lever is in the N range as a non-traveling range, the brake B-4 which does not participate in motive power transmission is turned to an engagement state in advance, and thereby an oil pressure is made to newly operate only on the clutch C-2 and the brake B-0 when the select lever is switched to the R range. In this manner, the apparatus is capable of suppressing delay in operation of clutches and brakes, that is, delay in response to a shift operation, without increasing the capacity of an oil pressure generation source.
- Patent Document 1: Japanese Patent Application Publication No.
JP-A-H05-157164 - In the above-described type of transmission apparatus, it is conceivable that a dedicated linear solenoid is used to turn on or off a brake (or a clutch) which is engaged in the N range. However, the linear solenoid adjusts the pressure by draining a part of input operating oil while outputting the rest of the operating oil. This increases the flow rate consumed by the linear solenoid itself, and increases the flow rate required and consumed in the entire hydraulic circuit, which consequently leads to increase in capacity of the oil pressure generation source and increases energy consumption in the entire apparatus. Further, newly adding the linear solenoid enlarges the entire apparatus.
- It is a main object of a transmission apparatus of the present invention and a vehicle having the same to suppress the energy consumption of the entire apparatus and to downsize the apparatus.
- In the transmission apparatus of the present invention and the vehicle having the same, the following means are adopted to achieve at least a part of the above-described object.
- A transmission apparatus of the present invention, including an automatic transmission that is mounted in a vehicle and is capable of engaging a first engagement element and a second engagement element among a plurality of engagement elements when shift-operated to a reverse position, and engaging the first engagement element when shift-operated to a neutral position, includes: pressure feeding means for adjusting a fluid pressure of a fluid pressure source and outputting the fluid pressure as a line pressure; fluid pressure input/output means for receiving the line pressure from a reverse position output port among a plurality of output ports and outputting the line pressure when shift-operated to the reverse position, and blocking the plurality of output ports when shift-operated to the neutral position; first pressure regulating means for receiving, adjusting, and outputting the line pressure; and selective output means for outputting to the first engagement element the fluid pressure output from the reverse position output port and outputting to the second engagement element the fluid pressure output from the first pressure regulating means when shift-operated to the reverse position, and outputting to the first engagement element the fluid pressure output from the first pressure regulating means when shift-operated to the neutral position.
- In the transmission apparatus of the present invention, in the automatic transmission that is capable of engaging the first engagement element and the second engagement element among the plurality of engagement elements when shift-operated to the reverse position, and engaging the first engagement element when shift-operated to the neutral position, the fluid pressure input/output means outputs the pressure from the reverse position output port among the plurality of output ports when shift-operated to the reverse position, and blocks the plurality of output ports when shift-operated to the neutral position. The first pressure regulating means receives, adjusts, and outputs the line pressure. The selective output means outputs to the first engagement element the fluid pressure output from the reverse position output port and outputs to the second engagement element the fluid pressure output from the first pressure regulating means when shift-operated to the reverse position, and outputs to the first engagement element the fluid pressure output from the first pressure regulating means when shift-operated to the neutral position. Thus, as compared to the case where the first engagement element and the second engagement element are engaged simultaneously when shift-operated to the reverse position, in the present invention, the fluid pressure is only supplied to the first engagement element, whereby it is possible to suppress a discharging capacity of a fluid pressure source such as a pump. Furthermore, in the pressure regulating means such as a valve, generally, a small amount of operating fluid leaks constantly. Thus, when dedicated pressure regulating means is provided so as to engage the first engagement element when in the neutral position, the discharge capacity of the pressure feeding means has to be increased by the amount of the operating fluid leaking from the pressure regulating means. In the present invention, it is not necessary to separately provide the pressure regulating means for engaging the first engagement element when shift-operated to the neutral position. Consequently, energy consumption of the entire apparatus can be suppressed and fuel efficiency be improved, and further, the transmission apparatus can be downsized.
- In the transmission apparatus of the present invention which is capable of, when shift-operated to a forward position, forming a shift speed for starting by engaging the first engagement element and a third engagement element among the plurality of engagement elements, and forming a shift speed other than the shift speed for starting by engaging at least a fourth engagement element among the plurality of engagement elements, the selective output means may be means for selectively outputting the fluid pressure output from the first pressure regulating means to the fourth engagement element or the first engagement element in the forward position when shift-operated to the forward position. Accordingly, the discharging capacity of the fluid pressure source can be suppressed also when switching from the neutral position to the forward position, and the fuel efficiency can be improved. Here, the fourth engagement element may be the second engagement element. In the transmission apparatus of the present invention according to this aspect, the fourth engagement element may be an element capable of, when shift-operated to the forward position, forming a shift speed which does not involve direct switching to or from the shift speed for starting. In this case, after the fluid pressure of the engagement element, which is released using the first pressure regulating means, is completely discharged, speed shifting that supplies the fluid pressure to the engagement element, which is engaged using the first pressure regulating means, does not occur. Thus, shifting with a long shifting time can be eliminated.
- Further, in the transmission apparatus of the present invention, the first pressure regulating means may be means for performing pressure adjustment such that when shift-operated to the neutral position, the first engagement element is engaged by a low engagement pressure lower than an engagement pressure when the first engagement element is fully engaged. Accordingly, the fluid pressure can be discharged quickly from the first engagement element when shifting speed, and a time needed for shifting can be shortened. Particularly, this effect becomes more prominent when shifting from the shift speed for starting to another forward speed.
- Furthermore, in the transmission apparatus of the present invention, the selective output means may be means including: a switching valve that has a first input port receiving the fluid pressure output from the first pressure regulating means, a second input port receiving the fluid pressure output from the reverse position output port of the fluid input/output means, a first output port outputting the fluid pressure to the first engagement element, and a second output port outputting the fluid pressure to the second engagement element, and that selectively switches between a state that the fluid pressure input to the first input port is output from the first output port and a state that the fluid pressure input to the first input port is output from the second output port and the fluid pressure input to the second input port is output from the first output port; and signal pressure output means for outputting a signal pressure for driving the switching valve. Accordingly, the state can be switched by one switching valve, and thus the fluid pressure circuit can be made compact. Moreover, when shift-operated from the reverse position to the forward position, the destination of output of the output pressure of the first pressure regulating means can be switched from the second engagement element to the first engagement element by switching one switching valve. Therefore, a time needed for shifting when shift-operated from the reverse position to the forward position can be shortened.
- In the transmission apparatus of the present invention which is capable of, when shift-operated to a forward position, forming a shift speed for starting by engaging the first engagement element and a third engagement element among the plurality of engagement elements, and forming a shift speed other than the shift speed for starting by engaging at least a fourth engagement element among the plurality of engagement elements, the fluid pressure input/output means may be means for receiving the line pressure from a forward position output port among the plurality of output ports and outputting the line pressure when shift-operated to the forward position, the transmission apparatus may include second pressure regulating means for receiving the fluid pressure output from the forward position output port and adjusting and outputting the fluid pressure, and the selective output means may be means for selectively outputting the fluid pressure output from the second pressure regulating means to the fourth engagement element or to the first engagement element in the forward position when shift-operated to the forward position. Accordingly, the discharging capacity of the fluid pressure source can be suppressed also when switching from the neutral position to the forward position, and the fuel efficiency can be improved. Furthermore, disengagement of the fourth engagement element and engagement of the third engagement element can be performed smoothly when changing from a shift speed other than the shift speed for starting to the shift speed for starting. In the transmission apparatus of the present invention according to this aspect, the fourth engagement element may be an element capable of, when shift-operated to the forward position, forming a shift speed which does not involve direct switching to or from the shift speed for starting. In the case where the fourth engagement element is an engagement element forming a shift speed (low shift speed) that is switched directly to/from the shift speed for starting, when downshifting from the low shift speed to the shift speed for starting, it becomes necessary to switch the fluid pressure output from the second pressure regulating means from the fourth engagement element to the first engagement element, which impairs smooth shifting. However, when shifting from a high shift speed to the shift speed for starting, considering shift shock and over-rev of the rotation speed of the internal combustion engine connected to the input shaft of the automatic transmission, shifting is generally made from the high shift speed to the shift speed for starting through an intermediate shift speed. Thus, switching the fluid pressure output from the second pressure regulating means from the fourth engagement element to the first engagement element is not necessary, and the discharging capacity of the fluid pressure source when shifting from the forward position to the reverse position can be suppressed without impairing smooth shifting when traveling forward. Further, in the transmission apparatus of the present invention, the selective output means may output the fluid pressure output from the first pressure regulating means to the second engagement element when shift-operated to the forward position, and the second engagement element may be an element capable of, when shift-operated to the forward position, forming a shift speed which is other than the shift speed for starting and involves direct switching to or from the shift speed for starting. In this case, when shift-operated to the forward position, the fluid pressure output from the second pressure regulating means is supplied to the first engagement element, and the fluid pressure output from the first pressure regulating means is supplied to the second engagement element. Therefore, when directly switching from the shift speed formed by engaging the second engagement element to the shift speed for starting, it is possible to simultaneously supply the fluid pressure to the first engagement element and discharge the fluid pressure from the second engagement element, and thus the time required for shifting can be reduced. Furthermore, in the transmission apparatus of the present invention, the first pressure regulating means may be means for performing pressure adjustment such that when shift-operated to the neutral position, the first engagement element is engaged by a low engagement pressure lower than an engagement pressure when the first engagement element is fully engaged. Accordingly, the fluid pressure can be discharged from the first engagement element quickly when shifting speed, and the time needed for speed shifting can be reduced. Particularly, this effect becomes more prominent when shifting from the shift speed for starting to another forward speed.
- Further, in the transmission apparatus of the present invention, the selective output means may be means including: a first switching valve receiving the fluid pressure output from the first pressure regulating means and selectively outputting the fluid pressure to a first output port or a second output port supplying the fluid pressure to the second engagement element; a second switching valve that has a first input port receiving the fluid pressure output from the first output port of the first switching valve and a second input port receiving the fluid pressure output from the reverse position output port of the fluid input/output means, and that selectively outputs the fluid pressure input to the first and second input ports to the first engagement element; and signal pressure output means for outputting a signal pressure for driving the first and second switching valves.
- Further, in the transmission apparatus of the present invention according to the aspect that has the second pressure regulating means and that forms a shift speed other than the shift speed for starting by engaging at least the fourth engagement element when shift-operated to a forward position, the selective output means may be means including: a first switching valve receiving the fluid pressure output from the first pressure regulating means and selectively outputting the fluid pressure to a first output port or to a second output port supplying the fluid pressure to the second engagement element; a second switching valve that has a first input port and a second input port receiving the fluid pressure output from the reverse position output port of the fluid input/output means, and that selectively inputs the fluid pressure through the first or second input port and outputs the fluid pressure to the first engagement element; a third switching valve that has a third input port receiving the fluid pressure output from the first output port of the first switching valve, a fourth input port receiving the fluid pressure output from the second pressure regulating means, a third output port outputting the fluid pressure to the first input port of the second switching valve, and a fourth output port outputting the fluid pressure to the fourth engagement element, and that outputs the fluid pressure input to the fourth input port to the third output port or inputs the fluid pressure through the third input port and outputs the fluid pressure to the third output port, and inputs the fluid pressure through the fourth input port and outputs the fluid pressure to the fourth engagement element; and signal pressure output means for outputting a signal pressure for driving the first to third switching valves.
- A vehicle of the present invention has the transmission apparatus of the present invention according to one of the above-described aspects, that is, basically, a transmission apparatus having an automatic transmission that is mounted in a vehicle and is capable of engaging a first engagement element and a second engagement element among a plurality of engagement elements when shift-operated to a reverse position, and engaging the first engagement element when shift-operated to a neutral position. The transmission apparatus includes: pressure feeding means for adjusting a fluid pressure of a fluid pressure source and outputting the fluid pressure as a line pressure; fluid pressure input/output means for receiving the line pressure from a reverse position output port among a plurality of output ports and outputting the line pressure when shift-operated to the reverse position, and blocking the plurality of output ports when shift-operated to the neutral position; first pressure regulating means for receiving, adjusting, and outputting the line pressure; and selective output means for outputting to the first engagement element the fluid pressure output from the reverse position output port and outputting to the second engagement element the fluid pressure output from the first pressure regulating means when shift-operated to the reverse position, and outputting to the first engagement element the fluid pressure output from the first pressure regulating means when shift-operated to the neutral position. In the vehicle, a transmission apparatus, including an automatic transmission that is mounted in a vehicle and is capable of engaging a first engagement element and a second engagement element among a plurality of engagement elements when shift-operated to a reverse position, and engaging the first engagement element when shift-operated to a neutral position, includes: pressure feeding means for adjusting a fluid pressure of a fluid pressure source and outputting the fluid pressure as a line pressure; fluid pressure input/output means for receiving the line pressure from a reverse position output port among a plurality of output ports and outputting the line pressure when shift-operated to the reverse position, and blocking the plurality of output ports when shift-operated to the neutral position; first pressure regulating means for receiving, adjusting, and outputting the line pressure; and selective output means for outputting to the first engagement element the fluid pressure output from the reverse position output port and outputting to the second engagement element the fluid pressure output from the first pressure regulating means when shift-operated to the reverse position, and outputting to the first engagement element the fluid pressure output from the first pressure regulating means when shift-operated to the neutral position.
- In the vehicle of the present invention, since the transmission apparatus of the present invention of one of the above-described aspects is mounted, the effects achieved by the transmission apparatus of the present invention, such as effects of suppressing energy consumption of the entire apparatus and downsizing the apparatus, can be achieved.
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- [
FIG. 1] FIG. 1 is a schematic diagram showing an overview of the structure of anautomobile 10 having a transmission apparatus as one embodiment of the present invention. - [
FIG. 2] FIG. 2 is an explanatory diagram showing an example of an operation table of anautomatic transmission 20. - [
FIG. 3] FIG. 3 is a structural diagram showing an overview of the structure of ahydraulic circuit 50 of theautomatic transmission 20. - [
FIG. 4] FIG. 4 is a flowchart showing an example of an R-N switch processing routine executed by an ATECU 29. - [
FIG. 5] FIG. 5 is a time chart when ashift lever 91 is changed between an R position and an N position. - [
FIG. 6] FIG. 6 is a flowchart showing an example of a D-R switch processing routine executed by the ATECU 29. - [
FIG. 7] FIG. 7 is a time chart when theshift lever 91 is changed between a D position and the R position. - [
FIG. 8] FIG. 8 is a structural diagram showing an overview of the structure of ahydraulic circuit 150 included in a transmission apparatus of a second embodiment. - [
FIG. 9] FIG. 9 is an operation table of theautomatic transmission 20 when thehydraulic circuit 150 is used. - [
FIG. 10] FIG. 10 is a flowchart showing an example of an R-N switch processing routine executed by theATECU 29. - [
FIG. 11] FIG. 11 is a time chart when ashift lever 91 is changed between the R position and the N position. - [
FIG. 12] FIG. 12 is a flowchart showing an example of a D-R switch processing routine executed by theATECU 29. - [
FIG. 13] FIG. 13 is a time chart when theshift lever 91 is changed between the D position and the R position. - Now, best modes for carrying out the present invention will be described using embodiments.
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FIG. 1 is a structural diagram showing an overview of the structure of anautomobile 10 having a transmission apparatus according to one embodiment of the present invention.FIG. 2 shows an operation table of anautomatic transmission 20.FIG. 3 is a structural diagram showing an overview of the structure of ahydraulic circuit 50 of theautomatic transmission 20. As shown inFIG. 1 , theautomobile 10 of the embodiment has anengine 12 as an internal combustion engine outputting motive power by explosive combustion of hydrocarbon fuel such as gasoline and diesel oil, atorque converter 24 with a lock-up clutch attached to acrankshaft 14 of theengine 12, the multi-speedautomatic transmission 20 that includes aninput shaft 21 connected to an output side of thetorque converter 24 and anoutput shaft 22 connected to driving 18a, 18b via awheels gear mechanism 26 and adifferential gear 28, and that shifts the motive power input to theinput shaft 21 and transmits the shifted motive power to theoutput shaft 22, and a main electronic control unit (hereinafter also referred to as a main ECU) 90 controlling the entire vehicle. - The
engine 12 is operation-controlled by an engine electronic control unit (hereinafter also referred to as an engine ECU) 16. Although not shown in detail, theengine ECU 16 is structured as a microprocessor with a CPU as a main component, and has a ROM storing control programs, a RAM temporarily storing data, an input-output port, and a communication port besides the CPU. To thisengine ECU 16, signals from various sensors needed for operation-controlling theengine 12, such as a rotation speed sensor attached to thecrankshaft 14, are input via an input port, and from theengine ECU 16, a drive signal to a throttle motor adjusting a throttle opening, a control signal to a fuel injection valve, an ignition signal to spark plugs, and so on are output via an output port. Theengine ECU 16 communicates with themain ECU 90, controls theengine 12 by a control signal from themain ECU 90, and outputs data related to the operation state of theengine 12 to themain ECU 90 as necessary. - The
automatic transmission 20 is structured as a multi-speed transmission with six speeds, and has a single pinion typeplanetary gear mechanism 30, a Ravigneaux typeplanetary gear mechanism 40, three clutches C1, C2, C3, two brakes B1, B2, and a one-way clutch F1. The single pinion typeplanetary gear mechanism 30 has asun gear 31 as an external gear, aring gear 32 as an internal gear arranged concentrically with thesun gear 31, a plurality of pinion gears 33 meshing with thesun gear 31 and with thering gear 32, and acarrier 34 rotatably and revolvably holding the plurality of pinion gears 33. Thesun gear 31 is fixed to the case, and thering gear 32 is connected to theinput shaft 21. The Ravigneaux typeplanetary gear mechanism 40 has two 41a, 41b as external gears, a ring gear 42 as an internal gear, a plurality of short pinion gears 43a meshing with thesun gears sun gear 41a, a plurality of long pinion gears 43b meshing with thesun gear 41b and the plurality of short pinion gears 43a and with the ring gear 42, and acarrier 44 coupling the plurality of short pinion gears 43a and the plurality of long pinion gears 43b and holding the short pinion gears 43a and the long pinion gears 43b rotatably and revolvably. Thesun gear 41a is connected to thecarrier 34 of the single pinion typeplanetary gear mechanism 30 via the clutch C1. Thesun gear 41b is connected to thecarrier 34 via the clutch C3 and to a case via the brake B1. The ring gear 42 is connected to theoutput shaft 22. Thecarrier 44 is connected to theinput shaft 21 via the clutch C2. Further, thecarrier 44 is connected to the case via the brake B2, and to the case via the one-way clutch F1. - In the
automatic transmission 20 thus structured, it is possible to switch among first to sixth forward speeds, a reverse speed, and a neutral, by combinations of turning on and off of the clutches C1 to C3 (hereinafter, turning on refers to engagement and turning off refers to disengagement) and turning on and off of the brakes B1, B2, as shown in the operation table ofFIG. 2 . - A state of the first forward speed can be formed by turning on the clutch C1 and turning off the clutches C2, C3 and the brakes B1, B2, or by turning on the clutch C1 and the brake B2 and turning off the clutches C2, C3 and the brake B1. In this state, motive power input to the
ring gear 32 of the single pinion typeplanetary gear mechanism 30 from theinput shaft 21 is decelerated by receiving a reaction force on thesun gear 31 side by fixing thesun gear 31, and is transmitted to thesun gear 41a of the Ravigneaux typeplanetary gear mechanism 40 via thecarrier 34 and the clutch C1. Motive power input to thesun gear 41a is decelerated by receiving a reaction force on thecarrier 44 side by fixing thecarrier 44 by the one-way clutch F1, and is output to theoutput shaft 22 via the ring gear 42. Thus, motive power input to theinput shaft 21 is decelerated with a relatively large speed reduction ratio and output to theoutput shaft 22. In the state of first forward speed, during engine braking, thecarrier 44 is fixed instead of the one-way clutch F1 by turning on the brake B2. A state of the second forward speed can be formed by turning on the clutch C1 and the brake B1 and turning off the clutches C2, C3 and the brake B2. In this state, motive power input to thering gear 32 of the single pinion typeplanetary gear mechanism 30 from theinput shaft 21 is decelerated by receiving a reaction force on thesun gear 31 side by fixing thesun gear 31, and is transmitted to thesun gear 41a of the Ravigneaux typeplanetary gear mechanism 40 via thecarrier 34 and the clutch C1. Motive power input to thesun gear 41a is decelerated by receiving a reaction force on thesun gear 41b side by fixing thesun gear 41b by the brake B1, and is output to theoutput shaft 22 via the ring gear 42. Thus, motive power input to theinput shaft 21 is decelerated with a smaller speed reduction ratio than that of the first forward speed and output to theoutput shaft 22. A state of the third forward speed can be formed by turning on the clutches C1, C3 and turning off the clutch C2 and the brakes B1, B2. In this state, motive power input to thering gear 32 of the single pinion typeplanetary gear mechanism 30 from theinput shaft 21 is decelerated by receiving a reaction force on thesun gear 31 side by fixing thesun gear 31, and is transmitted to thesun gear 41a of the Ravigneaux typeplanetary gear mechanism 40 via thecarrier 34 and the clutch C1. Motive power input to thesun gear 41a is output at equal speed to theoutput shaft 22 via the ring gear 42 by integral rotation of the Ravigneaux typeplanetary gear mechanism 40 by turning on of the clutch C1 and the clutch C3. Thus, motive power input to theinput shaft 21 is decelerated with a smaller speed reduction ratio than that of the second forward speed and output to theoutput shaft 22. A state of the fourth forward speed can be formed by turning on the clutches C1, C2 and turning off the clutch C3 and the brakes B1, B2. In this state, motive power input to thering gear 32 of the single pinion typeplanetary gear mechanism 30 from theinput shaft 21 is decelerated by receiving a reaction force on thesun gear 31 side by fixing thesun gear 31 is transmitted to thesun gear 41a of the Ravigneaux typeplanetary gear mechanism 40 via thecarrier 34 and the clutch C1. The motive power is also transmitted to thecarrier 44 of the Ravigneaux typeplanetary gear mechanism 40 directly from theinput shaft 21 via the clutch C2, thereby determining a drive state of the ring gear 42, that is, theoutput shaft 22. Thus, motive power input to theinput shaft 21 is decelerated with a smaller speed reduction ratio than that of the third forward speed and output to theoutput shaft 22. A state of the fifth forward speed can be formed by turning on the clutches C2, C3 and turning off the clutch C1 and the brakes B1, B2. In this state, motive power input to thering gear 32 of the single pinion typeplanetary gear mechanism 30 from theinput shaft 21 is decelerated by receiving a reaction force on thesun gear 31 side by fixing thesun gear 31, and is transmitted to thesun gear 41b of the Ravigneaux typeplanetary gear mechanism 40 via thecarrier 34 and the clutch C1. The motive power is also transmitted to thecarrier 44 of the Ravigneaux typeplanetary gear mechanism 40 directly from theinput shaft 21 via the clutch C2, thereby determining a drive state of the ring gear 42, that is, theoutput shaft 22. Thus, motive power input to theinput shaft 21 is accelerated and output to theoutput shaft 22. A state of the sixth forward speed can be formed by turning on the clutch C2 and the brake B1, and turning off the clutches C1, C3 and the brake B2. In this state, motive power input to thecarrier 44 of the Ravigneaux typeplanetary gear mechanism 40 from theinput shaft 21 via the clutch C2 is accelerated by receiving a reaction force on thesun gear 41b side by fixing thesun gear 41b by the brake B1, and is output to theoutput shaft 22 via the ring gear 42. Thus, motive power input to theinput shaft 21 is accelerated with a smaller speed reduction ratio than that of the fifth forward speed and output to theoutput shaft 22. - A state of a first reverse speed can be formed by turning on the clutch C3 and the brake B2 and turning off the clutches C1, C2 and the brake B1. In this state, motive power input to the
ring gear 32 of the single pinion typeplanetary gear mechanism 30 from theinput shaft 21 is decelerated by receiving a reaction force on thesun gear 31 side by fixing thesun gear 31, and is transmitted to thesun gear 41b of the Ravigneaux typeplanetary gear mechanism 40 via thecarrier 34 and the clutch C3. Motive power input to thesun gear 41b is rotated in reverse by receiving a reaction force on thecarrier 44 side by fixing thecarrier 44 by the brake B2 and output to theoutput shaft 22 via the ring gear 42. Thus, motive power input to theinput shaft 21 is decelerated with a relatively small speed reduction ratio and output to theoutput shaft 22 as a motive power of reverse rotation. - A state of neutral may be formed by turning on the brake B2 and turning off the clutches C1 to C3 and the brake B1, or by turning off all of the clutches C1 to C3 and the brakes B1, B2. In this embodiment, the state of neutral is formed by the former. The reason for doing so will be described later.
- The clutches C1 to C3 and the brakes B1, B2 of the
automatic transmission 20 are driven by thehydraulic circuit 50 ofFIG. 3 . Thishydraulic circuit 50 is structured from, as shown in the diagram, amechanical oil pump 52, aregulator valve 54, alinear solenoid 56, amanual valve 58, a normal close type linear solenoid SLC1, a normal close type linear solenoid SLC2, a normal open type linear solenoid SLC3, a normal close type linear solenoid SLB1, aC3 relay valve 60, aC2 relay valve 70, aB2 relay valve 80, a normal open type on-off solenoid S1, a normal close type on-off solenoid S2, and so on. Themechanical oil pump 52 sucks operating oil from astrainer 51 and pressure feeds the oil using motive power from theengine 12, and theregulator valve 54 adjusts the pressure of operating oil (line pressure PL) pressure fed by themechanical oil pump 52. Thelinear solenoid 56 drives theregulator valve 54 using a modulator pressure PMOD input via a not-shown modulator valve from the line pressure PL. Themanual valve 58 includes aninput port 58a receiving the line pressure PL, a Dposition output port 58b, and an Rposition output port 58c. In conjunction with an operation of ashift lever 91, themanual valve 58 blocks communication between theinput port 58a and both the 58b, 58c when theoutput ports shift lever 91 is in the neutral (N) position, and allows communication between theinput port 58a and the Dposition output port 58b and blocks communication between theinput port 58a and the Rposition output port 58c when theshift lever 91 is in the drive (D) position. When theshift lever 91 is in the reverse (R) position, themanual valve 58 blocks communication between theinput port 58a and the Dposition output port 58b and allows communication between theinput port 58a and the Rposition output port 58c. The linear solenoid SLC1 receives the line pressure PL and adjusts and outputs the line pressure to the clutch C1. The linear solenoid SLC2 receives a drive pressure PD from the Dposition output port 58b of themanual valve 58, and adjusts and outputs the drive pressure. The linear solenoid SLC3 receives the line pressure PL, and adjusts and outputs the line pressure PL. The linear solenoid SLB1 receives the drive pressure PD from the Dposition output port 58b of themanual valve 58, and adjusts and outputs the drive pressure PD to the brake B1. TheC3 relay valve 60 receives an SLC3 pressure that is an output pressure from the linear solenoid SLC3 and selectively outputs the pressure to the clutch C3 or theother oil passage 69. TheC2 relay valve 70 receives an output pressure from theC3 relay valve 60 via theother oil passage 69 and selectively outputs the output pressure to the clutch C2 or the other oil passage 79. Further, theC2 relay valve 70 receives an SLC2 pressure that is an output pressure from the linear solenoid SLC2, and outputs the SLC2 pressure to the oil passage 79 when outputting the output pressure of theC3 relay valve 60 to the clutch C2, and blocks the SLC2 pressure when outputting the output pressure of theC3 relay valve 60 to the oil passage 79. TheB2 relay valve 80 selectively receives an output pressure from theC2 relay valve 70 output to the oil passage 79 and a reverse pressure PR output from the Rposition output port 58c of themanual valve 58, and outputs the selected pressure to the brake B2. The on-off solenoid S1 outputs a signal pressure for driving to theC2 relay valve 70 using a modulator pressure PMOD input via a modulator valve from the line pressure PL. The on-off solenoid S2 outputs a signal pressure for driving to theC3 relay valve 60 and theB2 relay valve 80 using the modulator pressure PMOD input via the modulator valve from the line pressure PL. The oil passage between the Rposition output port 58c of themanual valve 58 and the input port 82d of theB2 relay valve 80 is provided with acheck valve 59a in a direction toward theB2 relay valve 80 side, and is provided with anorifice 59b in parallel with thecheck valve 59a. Here, the line pressure is an oil pressure needed in the automatic transmission. This oil pressure needed in the automatic transmission is calculated from the state (in shifting or not) of theautomatic transmission 20, torque output from theengine 12, vehicle speed, throttle opening, temperature of operating oil (oil temperature), and so on. - The
C3 relay valve 60 is structured from asleeve 62 in which a signalpressure input port 62a receiving the signal pressure from the on-off solenoid S2, aninput port 62b receiving the output pressure (SLC3 pressure) from the linear solenoid SLC3, anoutput port 62c outputting an oil pressure to the clutch C3, anoutput port 62d outputting an oil pressure to theoil passage 69, and adrain port 62e are formed, aspool 64 sliding in thesleeve 62 in an axial direction, and a spring 66 biasing thespool 64 in the axial direction. In thisC3 relay valve 60, when the signal pressure is not input from the on-off solenoid S2 to the signalpressure input port 62a, thespool 64 moves to a position shown in a left-half region in the diagram by the biasing force of the spring 66, thereby allowing communication between theinput port 62b and theoutput port 62c (the clutch C3 side) and blocking communication between theinput port 62b and theoutput port 62d (theC2 relay valve 70 side). When the signal pressure is input to the signalpressure input port 62a from the on-off solenoid S2, this signal pressure overcomes the biasing force of the spring 66 and thespool 64 moves to a position shown in a right-half region in the diagram, thereby blocking communication between theinput port 62b and theoutput port 62c (the clutch C3 side) and allowing communication between theinput port 62b and theoutput port 62d (theC2 relay valve 70 side). When the communication between theinput port 62b and theoutput port 62c (the clutch C3 side) is blocked, theoutput port 62c and thedrain port 62e communicate with each other accompanying this, and operating oil on the clutch C3 side is drained. - The
C2 relay valve 70 is structured from asleeve 72 in which a signal pressure input port 72a receiving the signal pressure from the on-off solenoid S1, aninput port 72b receiving the output pressure output from theC3 relay valve 60 to theoil passage 69, aninput port 72c receiving the output pressure (SLC2 pressure) from the linear solenoid SLC2, anoutput port 72d outputting an oil pressure to the clutch C2, anoutput port 72e outputting an oil pressure to the oil passage 79, and a drain port 72f are formed, aspool 74 sliding in thesleeve 72 in an axial direction, and aspring 76 biasing thespool 74 in the axial direction. In thisC2 relay valve 70, when the signal pressure is not input from the on-off solenoid S1 to the signal pressure input port 72a, thespool 74 moves to a position shown in a left-half region in the diagram by the biasing force of thespring 76, thereby allowing communication between theinput port 72b (theC3 relay valve 60 side) and theoutput port 72e (theB2 relay valve 80 side), and allowing communication between theinput port 72c (the linear solenoid SLC2 side) and theoutput port 72d (the clutch C2 side). When the signal pressure is input to the signal pressure input port 72a from the on-off solenoid S1, this signal pressure overcomes the biasing force of thespring 76, and thespool 76 moves to a position shown in a right-half region in the diagram, thereby blocking theinput port 72b (theC2 relay valve 60 side), allowing communication between theinput port 72c (the linear solenoid SLC2 side) and theoutput port 72e (theB2 relay valve 80 side), and blocking communication between theinput port 72c and theoutput port 72d (the clutch C2 side). When the communication between theinput port 72c and theoutput port 72d (the clutch C2 side) is blocked, theoutput port 72d and the drain port 72f communicate with each other accompanying this, and operating oil on the clutch C2 side is drained. - The
B2 relay valve 80 is structured from asleeve 82 in which a signalpressure input port 82a receiving the signal pressure from the on-off solenoid S2, a signalpressure input port 82b and a signal pressure output port 82c for outputting the signal pressure from the on-off solenoid S1 to the signal pressure input port 72a of theC2 relay valve 70 via theB2 relay valve 80, an input port 82d receiving a reverse pressure PR from the Rposition output port 58c of themanual valve 58, aninput port 82e receiving an output pressure from theoutput port 72e of theC2 relay valve 70, and anoutput port 82f outputting an oil pressure to the brake B2 are formed, a spool 84 sliding in thesleeve 82 in an axial direction, and aspring 86 biasing the spool 84 in the axial direction. In thisB2 relay valve 80, when the signal pressure is not input to the signalpressure input port 82a from the on-off solenoid S1, the spool 84 moves to a position shown in a left-half region in the diagram by the biasing force of thespring 86, thereby blocking the signalpressure input port 82b to turn off the signal pressure to the signal pressure input port 72a of theC2 relay valve 70, allowing communication between the input port 82d (the side of the Rposition output port 58 of the manual valve 58) and theoutput port 82f (the brake B2 side), and blocking theinput port 82e (theC2 relay valve 70 side). When the signal pressure is input to the signalpressure input port 82a from the on-off solenoid S2, this signal pressure overcomes the biasing force of thespring 86, and thespool 86 moves to a position shown in a right-half region in the diagram, thereby allowing communication between the S1 signalpressure input port 82b and the S1 signal pressure output port 82c to form a state that the signal pressure from the on-off solenoid S1 can be output to the signal pressure input port 72a of theC2 relay valve 70 via the signalpressure input port 82b and the signal pressure output port 82c, blocking the input port 82d (the side of the Rposition output port 58 of the manual valve 58), and allowing communication between theinput port 82e (theC2 relay valve 70 side) and theoutput port 82f (the clutch C3 side). - The automatic transmission 20 (the hydraulic circuit 50) is drive-controlled by an automatic transmission electronic control unit (hereinafter referred to as an ATECU) 29. The
ATECU 29 is formed as, although not shown in detail, a microprocessor with a CPU as a main component, and has a ROM storing processing programs, a RAM temporarily storing data, an input/output port, and a communication port, besides the CPU. To theATECU 29, an input shaft rotation speed Nin from a rotation speed sensor attached to theinput shaft 21, an output shaft rotation speed Nout from a rotation speed sensor attached to theoutput shaft 22, and the like are input via an input port. From theATECU 29, drive signals to thelinear solenoids 56, SCL1 to SLC3, SLB1, drive signals to the on-off solenoids S1, S2, and so on are output via an output port. TheATECU 29 communicates with themain ECU 90, controls the automatic transmission 20 (the hydraulic circuit 50) by a control signal from themain ECU 90, and outputs data related to the state of theautomatic transmission 20 to themain ECU 90 as necessary. - The
main ECU 90 is formed as, although not shown in detail, a microprocessor with a CPU as a main component, and has a ROM storing processing programs, a RAM temporarily storing data, an input/output port, and a communication port, besides the CPU. To themain ECU 90, a shift position SP from ashift position sensor 92 detecting an operation position of theshift lever 91, an accelerator opening Acc from an acceleratorpedal position sensor 94 detecting a depression amount of anaccelerator pedal 93, a brake switch signal BSW from abrake switch 96 detecting depression of abrake pedal 95, a vehicle speed V from avehicle speed sensor 98, and so on are input via an input port. Here, theshift lever 91 in the embodiment can select among a parking (P) position, a reverse (R) position, a neutral (N) position, and a drive (D) position, and the clutches C1 to C3 and the brake B1, B2 are turned on and off according to the selected position. As described above, themain ECU 90 is connected to theengine ECU 16 and theATECU 29 via the communication port, and exchanges various control signals and data with theengine ECU 16 and theATECU 29. - In the
automobile 10 thus structured, when theshift lever 91 is shift-operated to the D position, one of the first forward speed to the sixth forward speed is set using a shift map based on the accelerator opening ACC and the vehicle speed V, and thelinear solenoids 56, SLC1 to SLC3, SLB1 and the on-off solenoids S1, S2 are drive-controlled so that necessary clutches and brakes among the clutches C1 to C3 and the brakes B1, B2 are turned on according to the set shift speed. - Here, the
automatic transmission 20 and theATECU 29 correspond to the transmission apparatus of the embodiment. - Next, operation of the transmission apparatus of the embodiment included in the thus structured
automobile 10, particularly, operation when theshift lever 91 is changed between the N position and the R position and operation when theshift lever 91 is changed between the D position and the R position will be described. First, the operation when theshift lever 91 is changed between the N position and the R position will be described.FIG. 4 is a flowchart showing an example of an R-N switch processing routine executed by theATECU 29. This routine is executed when theshift lever 91 is switched from the R position to the N position or switched from the N position to the R position. When theshift lever 91 is switched from the R position to the N position, processing is performed in which a state that the clutch C3 and the brake B2 are on is switched to a state that only the brake B2 is on. When theshift lever 91 is switched from the N position to the R position, processing is performed in which a state that only the brake B2 is on is switched to a state that the clutch C3 and the brake B2 are on. In the following, the routine inFIG. 4 will be described with reference to a time chart illustrated inFIG. 5 . - When the R-N switch processing routine is executed, the CPU of the
ATECU 29 first determines whether theshift lever 91 is switched from the R position to the N position or from the N position to the R position (step S100). When theshift lever 91 is switched from the R position to the N position (time t11 inFIG. 5 ), the linear solenoid SLC3 is drive-controlled so that the SLC3 pressure as the output pressure from the linear solenoid SLC3 decreases gradually (step S110). Accordingly, a clutch pressure PC3 acting on the clutch C3 becomes small gradually, and engagement of the clutch C3 is released (see times t11 to t12 inFIG. 5 ). Further, when theshift lever 91 is switched from the R position to the N position, communication between theinput port 58a receiving the line pressure PL of themanual valve 58 and the Rposition output port 58c is blocked, and operating oil on the brake B2 side is drained via theorifice 59b. Thus, a brake pressure PB2 acting on the brake B2 by the reverse pressure PR gradually becomes close to the value 0 (see times t11 to t12 inFIG. 5 ). Subsequently, upon elapsing of a predetermined time T (time t12 inFIG. 5 ) by which the SLC3 pressure approximates to a predetermined pressure P0 after theshift lever 91 is switched from the R position to the N position (step S120), both of the on-off solenoid S1 and the on-off solenoid S2 are turned on (step S130), the linear solenoid SLC3 is drive-controlled so that the SLC3 pressure is held constant at the predetermined pressure P0 (step S140), and this routine is finished. As described above, the on-off solenoid S1 is structured as a normal open type solenoid, and the on-off solenoid S2 is structured as a normal close type solenoid. Therefore, when both the on-off solenoids S1, S2 are turned on, the on-off solenoid S1 no longer outputs the signal pressure, and the on-off solenoid S2 outputs the signal pressure. This results in that a state that the SLC3 pressure from the linear solenoid SLC3 is supplied to the clutch C3 side to a state that the SLC3 pressure from the linear solenoid SLC3 is supplied to the brake B2 side via theC3 relay valve 60, theC2 relay valve 70, and theB2 relay valve 80 in order. In the embodiment, after the on-off solenoid S1 and the on-off solenoid S2 are both turned on, the linear solenoid SLC3 is drive-controlled so that the SLC3 pressure is held constant at the predetermined pressure P0, resulting in that the predetermined pressure P0 acts on the brake B2 to engage the brake B2. Here, the predetermined pressure P0 in the embodiment is set to the oil pressure to a degree that a piston of the brake B2 comes in contact with a friction plate. When theshift lever 91 is in the N position, it is not necessary to fully engage the brake B2. Thus, engaging the brake B2 by the predetermined pressure P0, which is the minimum required pressure, enables suppression of energy consumption. - On the other hand, when the
shift lever 91 is switched from the N position to the R position (time t13 inFIG. 5 ), the on-off solenoid S1 is turned on and the on-off solenoid S2 is turned off (step S150), and the linear solenoid SLC3 is drive-controlled so that the SLC3 pressure of the linear solenoid SLC3 becomes the value 0 (step S160). When the on-off solenoid S1 is turned on and the on-off solenoid S2 is turned off, both the on-off solenoids S1, S2 no longer output the signal pressure. Thus, the SLC3 pressure of the linear solenoid SLC3 is supplied to the clutch C3 side, and the reverse pressure PR from the Rposition output port 58c of themanual valve 58 is supplied to the brake B2 side. Further, when theshift lever 91 is operated to the R position, theinput port 58a of themanual valve 58 to which the line pressure PL is input and the Rposition output port 58c communicate with each other, resulting in that the line pressure PL acts on the brake B2 via theinput port 58a and the Rposition output port 58c of themanual valve 58 to engage the brake B2. Then a fast fill for quickly filling operating oil is performed to fill a pack clearance of the clutch C3 (step S170). The SLC3 pressure increases gradually after the fast fill is completed (step S180), the linear solenoid SLC3 is drive-controlled so that the SLC3 pressure becomes maximum accompanying engagement of the clutch C3 (step S190), and this routine is finished. Thus, the clutch C3 is engaged and the R position is formed. In this manner, when theshift lever 91 is in the R position, the brake B2 is engaged by the oil pressure PR from the Rposition output port 58 of themanual valve 58, and the clutch C3 is engaged by the SLC3 pressure from the linear solenoid SLC3. When theshift lever 91 is in the N position, the brake B2 is engaged by supplying the SLC3 pressure from the linear solenoid SLC3 to the brake B2 instead of the clutch C3. Thus, it is possible to eliminate the need for providing a dedicated linear solenoid for engaging the brake B2. - Next, the operation when the
shift lever 91 is changed between the D position and the R position will be described.FIG. 6 is a flowchart showing an example of a D-R switch processing routine executed by theATECU 29. This routine is executed when theshift lever 91 is switched from the D position to the R position or from the R position to the D position. When theshift lever 91 is switched from the D position to the R position, processing is performed in which a state that the clutch C1 and the brake B2 are on is switched to a state that only the brake B2 is on. When theshift lever 91 is switched from the R position to the D position, processing is performed so as to form a state of no engine braking with the first forward speed, that is, a state that only the brake B2 is on is switched to a state that the clutch C1 and the brake B2 are on. In the following, the routine inFIG. 6 will be described with reference to a time chart illustrated inFIG. 7 . - When the D-R switch processing routine is executed, the CPU of the
ATECU 29 first determines whether theshift lever 91 is switched from the D position to the R position or from the R position to the D position (step S200). When theshift lever 91 is switched from the D position to the R position (time t21 inFIG. 7 ), the linear solenoid SLC1 is drive-controlled so that the SLC1 pressure as the output pressure from the linear solenoid SLC1 becomes thevalue 0 so as to release engagement of the clutch C1 (step S210). The on-off solenoid S1 is turned on, and the on-off solenoid S2 is turned off (step S220). Thus, since both the on-off solenoids S1, S2 no longer output the signal pressure, the SLC3 pressure of the linear solenoid SLC3 is supplied to the clutch C3 side, and the oil pressure PR from the Rposition output port 58c of themanual valve 58 is supplied to the brake B2 side. This results in that the line pressure PL acts as the reverse pressure PR on the brake B2 via theinput port 58a and the Rposition output port 58c of themanual valve 58 to thereby engage the brake B2. Then the aforementioned fast fill is performed for the clutch C3 (step S230). The SLC3 pressure of the linear solenoid SLC3 is increased gradually (S240), the linear solenoid SLC3 is drive-controlled so that the SLC3 pressure becomes maximum accompanying engagement of the clutch C3 (step S250), and this routine is finished. - On the other hand, when the
shift lever 91 is switched from the R position to the D position (time t22 inFIG. 7 ), the linear solenoid SLC3 is drive-controlled so that the SLC3 pressure of the linear solenoid SLC3 decreases gradually (step S260). Accordingly, the clutch pressure PC3 acting on the clutch C3 decreases gradually, and engagement of the clutch C3 is released (seetimes 22 to t23 inFIG. 7 ). Further, when theshift lever 91 is switched from the R position to the D position, communication between theinput port 58a receiving the line pressure PL and the Rposition output port 58c in themanual valve 58 is blocked, and thus the brake pressure PB2 acting on the brake B2 from the Rposition output port 58c becomes close to the value 0 (see times t22 to t23 inFIG. 7 ). Subsequently, the fast fill is performed for the clutch C1 (step S270), and the linear solenoid SLC1 is drive-controlled so that the SLC1 pressure as the output pressure of the linear solenoid SLC1 is increased gradually (step S280). Then, upon elapsing of the predetermined time T from when theshift lever 91 is switched from the R position to the D position (step S290), the on-off solenoid S1 is turned off and the on-off solenoid S2 is turned on (step S300). Accordingly, since both the on-off solenoids S1, S2 output the signal pressure, the SLC2 pressure of the linear solenoid SLC2 is supplied to the brake B2 side, and the SLC3 pressure of the linear solenoid SLC3 is blocked. Then the linear solenoid SLC2 is drive-controlled so that the SLC2 pressure of the linear solenoid SLC2 becomes the aforementioned predetermined pressure P0, and is held constant at this predetermined pressure P0 (step S310). The linear solenoid SLC1 is drive-controlled so that the SLC1 pressure of the linear solenoid SLC1 becomes maximum accompanying engagement of the clutch C1 (S320), and this routine is finished. Thus, the clutch C1 is engaged and the brake B2 is engaged, thereby forming the first forward speed of the D position. In this manner, when theshift lever 91 is in the R position, the brake B2 is engaged by the oil pressure PR from the Rposition output port 58c of themanual valve 58, and the clutch C3 is engaged by the SLC3 pressure from the linear solenoid SLC3. When theshift lever 91 is in the D position, the brake B2 is engaged by supplying the SLC2 pressure from the linear solenoid SLC2 to the brake B2, and the clutch C1 is engaged by supplying the SLC1 pressure from the linear solenoid SLC1 to the clutch C1. Thus, it is possible to eliminate the need for providing a dedicated linear solenoid for engaging the brake B2. - In the embodiment, when the
shift lever 91 is in the N position, the SLC3 pressure of the linear solenoid SLC3 is used to engage the brake B2, and when theshift lever 91 is in the D position, the SLC2 pressure of the linear solenoid SLC2 is used to engage the brake B2. This is based on that the SLC3 pressure of the linear solenoid SLC3 can be used to engage the brake B2 when in the D position similarly to when in the N position, but in this case, since the linear solenoid SLC3 is structured to supply the SLC3 pressure to the clutch C3 for forming the third forward speed, it becomes necessary to switch engagement from the clutch C3 to the brake B2 by one linear solenoid SLC3 when downshifting from the third forward speed to the first forward speed (when engine braking), which hinders smooth downshifting. - In the transmission apparatus of the embodiment described above, when the
shift lever 91 is in the R position, the brake B2 is engaged by the reverse pressure PR from the Rposition output port 58 of themanual valve 58, and the clutch C3 is engaged by the SLC3 pressure from the linear solenoid SLC3 to thereby form the state of the first reverse speed. When theshift lever 91 is in the N position, the brake B2 is engaged by supplying the SLC3 pressure from the linear solenoid SLC3 to the brake B2 instead of the clutch C3 to thereby form the state of neutral. Thus, there is no need for providing a dedicated linear solenoid for engaging the brake B2. Consequently, by suppressing increase in consumption flow rate (energy consumption) in thehydraulic circuit 50 due to separately providing a linear solenoid, energy efficiency of the entire apparatus can be improved, and the entire apparatus can be downsized. Since the brake B2, out of the clutch C3 and the brake B2 to be engaged in the R position, is engaged in the N position in advance, only the clutch C3 needs to be engaged when switching from the N position to the R position. Thus, the response to a shift operation can be increased further. Moreover, when theshift lever 91 is in the D position, the brake B2 is engaged by supplying the brake B2 with the SLC2 pressure from the linear solenoid SLC2, which is different from the linear solenoid SLC3 supplying an oil pressure to the clutch C3 that is used for forming the third forward speed, and the clutch C1 is engaged by supplying the SLC1 pressure from the linear solenoid SLC1 to the clutch C1. Thus, downshifting from the third forward speed to the first forward speed can be performed smoothly. Furthermore, when theshift lever 91 is in the D position (at the time of no engine braking with the first forward speed) or in the N position, the engagement pressure of the brake B2 is set to the predetermined pressure P0, which is the minimum required pressure, and thus the consumption flow rate (energy consumption) of thehydraulic circuit 50 can be suppressed further. - Next, a transmission apparatus of a second embodiment will be described.
FIG. 8 is a structural diagram showing an overview of the structure of ahydraulic circuit 150 included in the transmission apparatus of the second embodiment. Note that for the transmission apparatus of the second embodiment, the same elements as those in the transmission apparatus of the embodiment are denoted by the same reference numerals, and overlapping descriptions thereof are omitted. As shown in the diagram, instead of the three relay valves, which are theC3 relay valve 60, theC2 relay valve 70, and theB2 relay valve 80, and the normal open type on-off solenoid S1 and the normal close type on-off solenoid S2 for driving the three relay valves included in thehydraulic circuit 50 of the embodiment, thehydraulic circuit 150 of the second embodiment has aC3 relay valve 160 switching between a state that the SLC3 pressure, which is the output pressure from the linear solenoid SLC3, is output to the clutch C3 and the reverse pressure PR, which is the output pressure from the Rposition output port 58c of themanual valve 58, is output to the brake B2 and a state that the SLC3 pressure is output to the brake B2 and the reverse pressure PR is blocked, and a normal close type on-off solenoid S driving theC3 relay valve 160. An operation table of theautomatic transmission 20 when using thishydraulic circuit 150 is shown inFIG. 9 . - The
C3 relay valve 160 is structured from, as shown inFIG. 8 , asleeve 162 in which a signalpressure input port 162a receiving a signal pressure from the on-off solenoid S, aninput port 162b receiving the reverse pressure PR from the Rposition output port 58c of themanual valve 58, aninput port 162c receiving the output pressure (SLC3 pressure) from the linear solenoid SLC3, anoutput port 162d outputting an oil pressure to the clutch C3, anoutput port 162e outputting an oil pressure to the brake B2, and adrain port 162f are formed, aspool 164 sliding in thesleeve 162 in an axial direction, and aspring 166 biasing thespool 164 in the axial direction. In thisC3 relay valve 160, when the signal pressure is not input from the on-off solenoid S to the signalpressure input port 162a, thespool 164 moves to a position shown in a left-half region in the diagram by the biasing force of thespring 166, thereby allowing communication between theinput port 162b (the side of the Rposition output port 58c of the manual valve 58) and theoutput port 162e (the brake B2 side) and allowing communication between theinput port 162c (the side of the output port of the linear solenoid SLC3) and theoutput port 162d (the clutch C3 side). On the other hand, when the signal pressure is input from the on-off solenoid S to the signalpressure input port 162a, this signal pressure overcomes the biasing force of thespring 166 and thespool 164 moves to a position shown in a right-half region in the diagram, thereby blocking theinput port 162b (the side of the Rposition output port 58c of the manual valve 58) and blocking communication between theinput port 162c (the side of the output port of the linear solenoid SLC3) and theoutput port 162d (the clutch C3 side), and allowing communication between theinput port 162c and theoutput port 162e (the brake B2 side). When the communication between theinput port 162c (the side of the output port of the linear solenoid SLC3) and theoutput port 162d (the clutch C3 side) is blocked, theoutput port 162d and thedrain port 162f communicate with each other accompanying this, and the operating oil supplied to the clutch C3 is drained. - Next, operation of the transmission apparatus of the second embodiment thus structured will be described.
FIG. 10 is a flowchart showing an example of R-N switch processing routine executed by theATECU 29. This routine is executed when theshift lever 91 is switched from the R position to the N position or from the N position to the R position. In the following, the routine inFIG. 10 will be described with reference to a time chart illustrated inFIG. 11 . - When the R-N switch processing routine is executed, the CPU of the
ATECU 29 first determines whether theshift lever 91 is switched from the R position to the N position or from the N position to the R position (step S400). When theshift lever 91 is switched from the R position to the N position (time t31 inFIG. 11 ), the linear solenoid SLC3 is drive-controlled so that the SLC3 pressure as the output pressure from the linear solenoid SLC3 decreases gradually (step S410). Accordingly, a clutch pressure PC3 acting on the clutch C3 becomes small gradually, and engagement of the clutch C3 is released (see times t31 to t32 inFIG. 11 ). Further, when theshift lever 91 is switched from the R position to the N position, a brake pressure PB2 acting on the brake B2 gradually becomes close to the value 0 (see times t31 to t32 inFIG. 11 ). Subsequently, upon elapsing of a predetermined time T (time t32 inFIG. 11 ) by which the SLC3 pressure approximates to a predetermined pressure P0 after theshift lever 91 is switched from the R position to the N position (step S420), the on-off solenoid S is turned on (step S430), the linear solenoid SLC3 is drive-controlled so that the SLC3 pressure is held constant at the predetermined pressure P0 (step S440), and this routine is finished. As described above, the on-off solenoid S is structured as a normal close type solenoid. When the on-off solenoid S is turned on, the signal pressure is output from the on-off solenoid S, resulting in that the SLC3 pressure from the linear solenoid SLC3 is supplied to the brake B2 via theC3 relay valve 160. In the embodiment, after the on-off solenoid S is turned on, the linear solenoid SLC3 is drive-controlled so that the SLC3 pressure is held constant at the predetermined pressure P0, resulting in that the predetermined pressure P0 acts on the brake B2 to engage the brake B2. Here, the predetermined pressure P0 in the embodiment is set to the oil pressure to a degree that a piston of the brake B2 comes in contact with a friction plate (that is, an oil pressure equal to or lower than a stroke end pressure Pse). When theshift lever 91 is in the N position, it is not necessary to fully engage the brake B2. Thus, engaging the brake B2 by the predetermined pressure P0, which is the minimum required pressure, enables suppression of energy consumption. - On the other hand, when the
shift lever 91 is switched from the N position to the R position (time t33 inFIG. 11 ), the on-off solenoid S is turned off (step S450), and the linear solenoid SLC3 is drive-controlled so that the SLC3 pressure of the linear solenoid SLC3 becomes the predetermined pressure P0 that is equal to or lower than the stroke end pressure Pse (step S460). When the on-off solenoid S is turned off, the on-off solenoid S no longer outputs the signal pressure. Thus, the SLC3 pressure from the linear solenoid SLC3 is supplied to the clutch C3 by theC3 relay valve 160, and the line pressure is supplied as the reverse pressure PR to the brake B2 via theinput port 58a and the Rposition output port 58c of themanual valve 58. Then a fast fill for quickly filling operating oil is performed to fill a pack clearance of the clutch C3 (step S470). The SLC3 pressure increases gradually after the fast fill is completed (S480), the linear solenoid SLC3 is drive-controlled so that the SLC3 pressure becomes maximum accompanying engagement of the clutch C3 (step S490), and this routine is finished. Thus, the clutch C3 is engaged and the R position is formed. In this manner, when theshift lever 91 is in the R position, the brake B2 is engaged by the reverse pressure PR from the Rposition output port 58 of themanual valve 58, and the clutch C3 is engaged by the SLC3 pressure of the linear solenoid SLC3. When theshift lever 91 is in the N position, the brake B2 is engaged by supplying the SLC3 pressure from the linear solenoid SLC3 to the brake B2 instead of the clutch C3. Thus, it is possible to eliminate the need for providing a dedicated linear solenoid for engaging the brake B2. - Next, the operation when the
shift lever 91 is changed between the D position and the R position will be described.FIG. 12 is a flowchart showing an example of a D-R switch processing routine executed by theATECU 29. This routine is executed when theshift lever 91 is switched from the D position to the R position or from the R position to the D position. In the following, the routine inFIG. 12 will be described with reference to a time chart illustrated inFIG. 13 . - When the D-R switch processing routine is executed, the CPU of the
ATECU 29 first determines whether theshift lever 91 is switched from the D position to the R position or from the R position to the D position (step S500). When theshift lever 91 is switched from the D position to the R position (time t41 inFIG. 13 ), the linear solenoid SLC1 is drive-controlled so that the SLC1 pressure as the output pressure from the linear solenoid SLC1 becomes thevalue 0 so as to release engagement of the clutch C1 (step S510), and the on-off solenoid S is turned off (step S520). Accordingly, since the on-off solenoid S no longer outputs the signal pressure, the SLC3 pressure of the linear solenoid SLC3 is supplied to the clutch C3 side by theC3 relay valve 160, and the line pressure is supplied as the reverse pressure PR via theinput port 58a and the Rposition output port 58c of themanual valve 58 to the brake B2 side. Then, the linear solenoid SLC3 is drive-controlled so that the SLC3 pressure of the linear solenoid SLC3 becomes the predetermined pressure P0 that is equal to or lower than the stroke end pressure Pse (step S530), and the aforementioned fast fill is performed for the clutch C3 (step S540). The SLC3 pressure of the linear solenoid SLC3 is increased gradually (S550), the linear solenoid SLC3 is drive-controlled so that the SLC3 pressure becomes maximum accompanying engagement of the clutch C3 (step S560), and this routine is finished. - On the other hand, when the
shift lever 91 is switched from the R position to the D position (time t42 inFIG. 13 ), the linear solenoid SLC3 is drive-controlled so that the SLC3 pressure of the linear solenoid SLC3 decreases gradually (step S570). Accordingly, the clutch pressure PC3 acting on the clutch C3 decreases gradually, and engagement of the clutch C3 is released (see times 42 to t43 inFIG. 13 ). Further, when theshift lever 91 is switched from the R position to the D position, communication between theinput port 58a receiving the line pressure PL and the Rposition output port 58c in themanual valve 58 is blocked, and thus the brake pressure PB2 acting on the brake B2 from the Rposition output port 58c becomes close to the value 0 (see times t42 to t43 inFIG. 13 ). Subsequently, upon elapsing of a predetermined time T2 (time t43 inFIG. 13 ) by which the brake pressure PB2 approximates the predetermined pressure P0 after theshift lever 91 is switched from the R position to the D position (step S580), the on-off solenoid S is turned on (step S590), and the linear solenoid SLC3 is drive-controlled so that the SLC3 pressure is held constant at the predetermined pressure P0 (step S600). Accordingly, since the on-off solenoid S outputs the signal pressure, the SLC3 pressure of the linear solenoid SLC3 is supplied to the brake B2 side by theC3 relay valve 160, resulting in that the brake B2 is engaged by the predetermined pressure P0. Then the linear solenoid SLC1 is drive-controlled to perform the fast fill for the clutch C1 (step S610), the SLC1 pressure that is the output pressure of the linear solenoid SLC1 is increased gradually (step S620), the linear solenoid SLC1 is drive-controlled so that the SLC1 pressure of the linear solenoid SLC1 becomes maximum accompanying engagement of the clutch C1 (step S630), and this routine is finished. Thus, the clutch C1 is engaged and the brake B2 is engaged, thereby forming the first forward speed of the D position. In this manner, when theshift lever 91 is in the R position, the brake B2 is engaged by the reverse pressure PR from the Rposition output port 58c of themanual valve 58, and the clutch C3 is engaged by the SLC3 pressure from the linear solenoid SLC3. When theshift lever 91 is in the D position, the brake B2 is engaged by supplying the SLC3 pressure from the linear solenoid SLC3 to the brake B2, and the clutch C1 is engaged by supplying the SLC1 pressure from the linear solenoid SLC1 to the clutch C1. Thus, it is possible to eliminate the need for providing a dedicated linear solenoid for engaging the brake B2. - In the transmission apparatus in the embodiment or the second embodiment, the SLC3 pressure of the linear solenoid SLC3 is used to engage the brake B2 when the
shift lever 91 is in the N position, and the SLC2 pressure of the linear solenoid SLC2 is used to engage the brake B2 when theshift lever 91 is in the D position (at the time of no engine braking with the first forward speed). However, the present invention is not limited thereto. When in the D position, the SLC3 pressure of the linear solenoid SLC3 may be used to engage the brake B2, similarly to when in the N position. - In the transmission apparatus in the embodiment or the second embodiment, the brake B2 is engaged when the
shift lever 91 is in the D position (at the time of no engine braking with the first forward speed). However, at the time of no engine braking with the first forward speed, the one-way clutch F1 is engaged instead of the brake B2, and thus the brake B2 need not be engaged. - In the transmission apparatus in the embodiment or the second embodiment, the linear solenoids SLC1 to SLC3 are formed as linear solenoids for direct control, which directly controls the corresponding clutches and brakes by generating the optimal clutch pressure from the line pressure PL. However, linear solenoids may be used as ones for pilot control so as to drive control valves separately, and the clutch pressures may be generated by these control valves to control the corresponding clutches and brakes.
- In the transmission apparatus in the embodiment or the second embodiment, the
automatic transmission 20 is structured as a multi-speed transmission with six speeds of first to sixth forward speeds. However, the present invention is not limited to this. The automatic transmission may be structured as a multi-speed transmission with two to five speeds, or a multi-speed transmission with seven or more speeds. - Here, the correspondence between the major elements of the embodiments and the major elements of the invention described in the Disclosure of the Invention section will be described. In the embodiments, the brake B2 corresponds to the "first engagement element", and the clutch C3 corresponds to the "second engagement element". The
mechanical oil pump 52, theregulator valve 54, and thelinear solenoid 56 correspond to the "pressure feeding means". Themanual valve 58 corresponds to the "fluid pressure input/output means", and the linear solenoid SLC3 corresponds to the "first pressure regulating means". TheC3 relay valve 60, theC2 relay valve 70, theB2 relay valve 80, and the on-off solenoids S1, S2 correspond to the "selective output means". Further, the clutch C1 corresponds to the "third engagement element", the clutch C2 or the clutch C3 corresponds to the "fourth engagement element", and the linear solenoid SLC2 corresponds to the "second pressure regulating means". Furthermore, theC3 relay valve 60, theC2 relay valve 70, and theB2 relay valve 80 correspond to the "switching valve", and the on-off solenoids S1, S2 correspond to the "signal pressure output means". TheC3 relay valve 160 also corresponds to the "switching valve". Further, theC3 relay valve 60 corresponds to the "first switching valve", theB3 relay valve 80 corresponds to the "second switching valve", and theC2 relay valve 70 corresponds to the "third switching valve". Moreover, theoutput port 62d and theoutput port 162e correspond to the "first output port", theoutput port 62c and theoutput port 162d correspond to the "second output port", theoutput port 72e corresponds to the "third output port", and theoutput port 72d corresponds to the "fourth output port". Theinput port 82e and theinput port 162c correspond to the "first input port", theinput port 82b and theinput port 162b correspond to the "second input port", theinput port 72b corresponds to the "third input port", and theinput port 72c corresponds to the "fourth input port". It should be noted that the embodiments are examples for specifically describing the best modes for carrying out the invention described in the Disclosure of the Invention section, and thus the correspondence between the major elements of the embodiments and the major elements of the invention described in the Disclosure of the Invention section does not limit the elements of the invention described in the Disclosure of the Invention section. That is to say, the invention described in the Disclosure of the Invention section should be construed based on the description in that section, and the embodiments are merely specific examples of the invention described in the Disclosure of the Invention section. - In the foregoing, the best modes for carrying out the present invention has been described using the embodiments, but the present invention is not limited to such embodiments at all. It is needless to mention that the present invention can be implemented in various modes within the scope of the present invention without departing therefrom.
- The present invention can be used in the automobile industry and the like.
Claims (12)
- A transmission apparatus including an automatic transmission that is mounted in a vehicle and is capable of engaging a first engagement element and a second engagement element among a plurality of engagement elements when shift-operated to a reverse position, and engaging the first engagement element when shift-operated to a neutral position, the transmission apparatus comprising:pressure feeding means for adjusting a fluid pressure of a fluid pressure source and outputting the fluid pressure as a line pressure;fluid pressure input/output means for receiving the line pressure and outputting from a reverse position output port among a plurality of output ports when shift-operated to the reverse position, and blocking the plurality of output ports when shift-operated to the neutral position;first pressure regulating means for receiving the line pressure and adjusting and outputting; andselective output means for outputting to the first engagement element a fluid pressure output from the reverse position output port and outputting to the second engagement element a fluid pressure output from the first pressure regulating means when shift-operated to the reverse position, and outputting to the first engagement element the fluid pressure output from the first pressure regulating means when shift-operated to the neutral position.
- The transmission apparatus according to claim 1, which is capable of, when shift-operated to a forward position, forming a shift speed for starting by engaging the first engagement element and a third engagement element among the plurality of engagement elements, and forming a shift speed other than the shift speed for starting by engaging at least a fourth engagement element among the plurality of engagement elements, wherein
the selective output means is means for selectively outputting the fluid pressure output from the first pressure regulating means to the fourth engagement element or the first engagement element in the forward position when shift-operated to the forward position. - The transmission apparatus according to claim 2, wherein
the fourth engagement element is an element capable of, when shift-operated to the forward position, forming a shift speed which does not involve direct switching to or from the shift speed for starting. - The transmission apparatus according to any one of claims 1 to 3, wherein the first pressure regulating means is means for performing pressure adjustment such that when shift-operated to the neutral position, the first engagement element is engaged by a low engagement pressure lower than an engagement pressure when the first engagement element is fully engaged.
- The transmission apparatus according to any one of claims 1 to 4, wherein the selective output means is means including:a switching valve that has a first input port receiving the fluid pressure output from the first pressure regulating means, a second input port receiving the fluid pressure output from the reverse position output port of the fluid input/output means, a first output port outputting the fluid pressure to the first engagement element, and a second output port outputting the fluid pressure to the second engagement element, and that selectively switches between a state that the fluid pressure input to the first input port is output from the first output port and a state that the fluid pressure input to the first input port is output from the second output port and the fluid pressure input to the second input port is output from the first output port; andsignal pressure output means for outputting a signal pressure for driving the switching valve.
- The transmission apparatus according to claim 1, which is capable of, when shift-operated to a forward position, forming a shift speed for starting by engaging the first engagement element and a third engagement element among the plurality of engagement elements, and forming a shift speed other than the shift speed for starting by engaging at least a fourth engagement element among the plurality of engagement elements, wherein
the fluid pressure input/output means is means for receiving the line pressure and outputting from a forward position output port among the plurality of output ports when shift-operated to the forward position;
the transmission apparatus includes second pressure regulating means for receiving, a fluid pressure output from the forward position output port, and adjusting and outputting; and
the selective output means is means for selectively outputting a fluid pressure output from the second pressure regulating means to the fourth engagement element or to the first engagement element in the forward position when shift-operated to the forward position. - The transmission apparatus according to claim 6, wherein
the fourth engagement element is an element capable of, when shift-operated to the forward position, forming a shift speed which does not involve direct switching to or from the shift speed for starting. - The transmission apparatus according to claim 6, wherein
the selective output means outputs the fluid pressure output from the first pressure regulating means to the second engagement element when shift-operated to the forward position; and
the second engagement element is an element capable of, when shift-operated to the forward position, forming a shift speed which is other than the shift speed for starting and involves direct switching to or from the shift speed for starting. - The transmission apparatus according to claim 6 or 7, wherein
the first pressure regulating means is means for performing pressure adjustment such that when shift-operated to the neutral position, the first engagement element is engaged by a low engagement pressure lower than an engagement pressure when the first engagement element is fully engaged. - The transmission apparatus according to claim 1, wherein
the selective output means is means including:a first switching valve receiving the fluid pressure output from the first pressure regulating means and selectively outputting the fluid pressure to a first output port or a second output port supplying the fluid pressure to the second engagement element;a second switching valve that has a first input port receiving the fluid pressure output from the first output port of the first switching valve and a second input port receiving the fluid pressure output from the reverse position output port of the fluid input/output means, and that selectively outputs the fluid pressure input to the first and second input ports to the first engagement element; andsignal pressure output means for outputting a signal pressure for driving the first and second switching valves. - The transmission apparatus according to claim 6, wherein
the selective output means is means including:a first switching valve receiving the fluid pressure output from the first pressure regulating means and selectively outputting the fluid pressure to a first output port or to a second output port supplying the fluid pressure to the second engagement element;a second switching valve that has a first input port and a second input port receiving the fluid pressure output from the reverse position output port of the fluid input/output means, and that selectively inputs the fluid pressure through the first or second input port, and outputs the fluid pressure to the first engagement element;a third switching valve that has a third input port receiving the fluid pressure output from the first output port of the first switching valve, a fourth input port receiving the fluid pressure output from the second pressure regulating means, a third output port outputting the fluid pressure to the first input port of the second switching valve, and a fourth output port outputting the fluid pressure to the fourth engagement element, and that outputs the fluid pressure input to the fourth input port to the third output port or inputs the fluid pressure through the third input port and outputs the fluid pressure to the third output port, and inputs the fluid pressure through the fourth input port and outputs the fluid pressure to the fourth engagement element; andsignal pressure output means for outputting a signal pressure for driving the first to third switching valves. - A vehicle comprising the transmission apparatus according to any one of claims 1 to 11.
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| JP2008235747 | 2008-09-12 | ||
| PCT/JP2009/065953 WO2010030006A1 (en) | 2008-09-12 | 2009-09-11 | Transmission device and vehicle equipped with the same |
Publications (3)
| Publication Number | Publication Date |
|---|---|
| EP2246595A1 true EP2246595A1 (en) | 2010-11-03 |
| EP2246595A4 EP2246595A4 (en) | 2013-08-28 |
| EP2246595B1 EP2246595B1 (en) | 2019-05-08 |
Family
ID=42005256
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP09813152.7A Active EP2246595B1 (en) | 2008-09-12 | 2009-09-11 | Transmission device and vehicle equipped with the same |
Country Status (6)
| Country | Link |
|---|---|
| US (1) | US8262527B2 (en) |
| EP (1) | EP2246595B1 (en) |
| JP (1) | JP5223925B2 (en) |
| KR (1) | KR101197367B1 (en) |
| CN (1) | CN101970908B (en) |
| WO (1) | WO2010030006A1 (en) |
Families Citing this family (10)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JP5310530B2 (en) * | 2009-03-19 | 2013-10-09 | アイシン・エィ・ダブリュ株式会社 | Hydraulic control device for automatic transmission |
| JP5177162B2 (en) * | 2010-03-30 | 2013-04-03 | アイシン・エィ・ダブリュ株式会社 | Control device for automatic transmission |
| JP5123977B2 (en) * | 2010-04-15 | 2013-01-23 | ジヤトコ株式会社 | Automatic transmission and hydraulic control method thereof |
| JP5494277B2 (en) * | 2010-06-22 | 2014-05-14 | アイシン・エィ・ダブリュ株式会社 | Hydraulic circuit device |
| JP5423710B2 (en) * | 2011-03-30 | 2014-02-19 | アイシン・エィ・ダブリュ株式会社 | Hydraulic control device |
| JP6106946B2 (en) * | 2012-04-23 | 2017-04-05 | マツダ株式会社 | Control method and control apparatus for automatic transmission |
| JP6197469B2 (en) * | 2013-08-12 | 2017-09-20 | アイシン・エィ・ダブリュ株式会社 | Vehicle drive device |
| JP6115433B2 (en) * | 2013-09-30 | 2017-04-19 | アイシン・エィ・ダブリュ株式会社 | Hydraulic device |
| JP6394470B2 (en) * | 2015-03-31 | 2018-09-26 | アイシン・エィ・ダブリュ株式会社 | Hydraulic control device for automatic transmission |
| WO2017163855A1 (en) * | 2016-03-25 | 2017-09-28 | アイシン・エィ・ダブリュ株式会社 | Hydraulic control device |
Family Cites Families (17)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JP3187867B2 (en) * | 1991-06-29 | 2001-07-16 | マツダ株式会社 | Automatic transmission hydraulic circuit |
| JPH05157164A (en) * | 1991-12-03 | 1993-06-22 | Aisin Aw Co Ltd | Servo oil pressure control device of automatic transmission for vehicle |
| JPH08145161A (en) | 1994-11-25 | 1996-06-04 | Toyota Motor Corp | Hydraulic control device for automatic transmission |
| JP3601154B2 (en) | 1995-01-31 | 2004-12-15 | マツダ株式会社 | Hydraulic control device for automatic transmission |
| JP3653839B2 (en) * | 1995-01-31 | 2005-06-02 | マツダ株式会社 | Hydraulic control device for automatic transmission |
| JPH08277916A (en) * | 1995-03-31 | 1996-10-22 | Nippon Soken Inc | Automatic transmission for vehicle |
| KR0154049B1 (en) * | 1995-08-22 | 1998-10-15 | 전성원 | Hydraulic control system of a/m |
| US6027427A (en) * | 1997-10-15 | 2000-02-22 | Hyundai Motor Co. | Hydraulic control systems for an automatic transmission |
| KR100331625B1 (en) * | 2000-06-08 | 2002-04-09 | 이계안 | Hydraulic control system for automatic transmission |
| JP5157028B2 (en) * | 2001-03-23 | 2013-03-06 | アイシン精機株式会社 | Automatic transmission |
| KR100387509B1 (en) * | 2001-08-21 | 2003-06-18 | 현대자동차주식회사 | Hydraulic control system of automatic transmission for vehicles |
| JP2003247634A (en) * | 2002-02-21 | 2003-09-05 | Aisin Seiki Co Ltd | Control method of automatic transmission |
| KR100460888B1 (en) * | 2002-08-12 | 2004-12-09 | 현대자동차주식회사 | Hydraulic control system of automatic transmission |
| JP4211723B2 (en) * | 2004-10-14 | 2009-01-21 | トヨタ自動車株式会社 | Hydraulic control device for automatic transmission |
| JP2006234052A (en) * | 2005-02-24 | 2006-09-07 | Aisin Seiki Co Ltd | Hydraulic control device for automatic transmission |
| JP4506655B2 (en) * | 2005-11-24 | 2010-07-21 | トヨタ自動車株式会社 | Hydraulic control device for automatic transmission for vehicle |
| JP4748601B2 (en) * | 2006-12-26 | 2011-08-17 | トヨタ自動車株式会社 | Hydraulic control device for automatic transmission and hybrid drive device including the same |
-
2009
- 2009-09-11 EP EP09813152.7A patent/EP2246595B1/en active Active
- 2009-09-11 KR KR1020107020502A patent/KR101197367B1/en not_active Expired - Fee Related
- 2009-09-11 CN CN2009801091005A patent/CN101970908B/en active Active
- 2009-09-11 JP JP2010528767A patent/JP5223925B2/en not_active Expired - Fee Related
- 2009-09-11 WO PCT/JP2009/065953 patent/WO2010030006A1/en not_active Ceased
- 2009-09-11 US US12/585,343 patent/US8262527B2/en not_active Expired - Fee Related
Also Published As
| Publication number | Publication date |
|---|---|
| US8262527B2 (en) | 2012-09-11 |
| CN101970908A (en) | 2011-02-09 |
| CN101970908B (en) | 2013-10-09 |
| JP5223925B2 (en) | 2013-06-26 |
| EP2246595B1 (en) | 2019-05-08 |
| KR20100121668A (en) | 2010-11-18 |
| US20100144488A1 (en) | 2010-06-10 |
| EP2246595A4 (en) | 2013-08-28 |
| JPWO2010030006A1 (en) | 2012-02-02 |
| WO2010030006A1 (en) | 2010-03-18 |
| KR101197367B1 (en) | 2012-11-05 |
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